{"id":2222,"date":"2015-04-22T21:02:52","date_gmt":"2015-04-22T21:02:52","guid":{"rendered":"https:\/\/courses.candelalearning.com\/oschemtemp\/?post_type=chapter&#038;p=2222"},"modified":"2020-12-28T15:12:16","modified_gmt":"2020-12-28T15:12:16","slug":"collision-theory","status":"publish","type":"chapter","link":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/chapter\/collision-theory\/","title":{"raw":"Collision Theory","rendered":"Collision Theory"},"content":{"raw":"<div class=\"textbox learning-objectives\">\r\n<h3>Learning Outcomes<\/h3>\r\n<ul>\r\n \t<li>Use the postulates of collision theory to explain the effects of physical state, temperature, and concentration on reaction rates<\/li>\r\n \t<li>Define the concepts of activation energy and transition state<\/li>\r\n \t<li>Use the Arrhenius equation in calculations relating rate constants to temperature<\/li>\r\n<\/ul>\r\n<\/div>\r\nWe should not be surprised that atoms, molecules, or ions must collide before they can react with each other. Atoms must be close together to form chemical bonds. This simple premise is the basis for a very powerful theory that explains many observations regarding chemical kinetics, including factors affecting reaction rates.\r\n\r\nCollision theory is based on the following postulates:\r\n<ol>\r\n \t<li>The rate of a reaction is proportional to the rate of reactant collisions: [latex]\\text{reaction rate}\\propto \\dfrac{\\#\\text{collisions}}{\\text{time}}[\/latex]<\/li>\r\n \t<li>The reacting species must collide in an orientation that allows contact between the atoms that will become bonded together in the product.<\/li>\r\n \t<li>The collision must occur with adequate energy to permit mutual penetration of the reacting species\u2019 valence shells so that the electrons can rearrange and form new bonds (and new chemical species).<\/li>\r\n<\/ol>\r\nWe can see the importance of the two physical factors noted in postulates 2 and 3, the orientation and energy of collisions, when we consider the reaction of carbon monoxide with oxygen:\r\n<p style=\"text-align: center;\">[latex]2\\text{CO(}g\\text{)}+{\\text{O}}_{2}\\text{(}g\\text{)}\\rightarrow 2{\\text{CO}}_{2}\\text{(}g\\text{)}[\/latex]<\/p>\r\nCarbon monoxide is a pollutant produced by the combustion of hydrocarbon fuels. To reduce this pollutant, automobiles have catalytic converters that use a catalyst to carry out this reaction. It is also a side reaction of the combustion of gunpowder that results in muzzle flash for many firearms. If carbon monoxide and oxygen are present in sufficient quantity, the reaction is spontaneous at high temperature and pressure.\r\n\r\nThe first step in the gas-phase reaction between carbon monoxide and oxygen is a collision between the two molecules:\r\n<p style=\"text-align: center;\">[latex]\\text{CO(}g\\text{)}+{\\text{O}}_{2}\\text{(}g\\text{)}\\rightarrow{\\text{CO}}_{2}\\text{(}g\\text{)}+\\text{O(}g\\text{)}[\/latex]<\/p>\r\nAlthough there are many different possible orientations the two molecules can have relative to each other, consider the two presented in Figure\u00a01. In the first case, the oxygen side of the carbon monoxide molecule collides with the oxygen molecule. In the second case, the carbon side of the carbon monoxide molecule collides with the oxygen molecule. The second case is clearly more likely to result in the formation of carbon dioxide, which has a central carbon atom bonded to two oxygen atoms (O=C=O). This is a rather simple example of how important the orientation of the collision is in terms of creating the desired product of the reaction.\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"648\"]<img src=\"https:\/\/openstax.org\/resources\/144afbd51f5819746ec419c80245c903d296a16e\" alt=\"A diagram is shown that illustrates two possible collisions between C O and O subscript 2. In the diagram, oxygen atoms are represented as red spheres and carbon atoms are represented as black spheres. The diagram is divided into upper and lower halves by a horizontal dashed line. At the top left, a C O molecule is shown striking an O subscript 2 molecule such that the O atom from the C O molecule is at the point of collision. Surrounding this collision are a mix of molecules of C O, and O subscript 2 of varying sizes. At the top middle region of the figure, two separated O atoms are shown as red spheres with the label, \u201cOxygen to oxygen,\u201d beneath them. To the upper right, \u201cNo reaction\u201d is written. Similarly in the lower left of the diagram, a C O molecule is shown striking an O subscript 2 molecule such that the C atom from the C O molecule is at the point of collision. Surrounding this collision are a mix of molecules of C O, and O subscript 2 of varying sizes. At the lower middle region of the figure, a black sphere and a red spheres are shown with the label, \u201cCarbon to oxygen,\u201d beneath them. To the lower right, \u201cMore C O subscript 2 formation\u201d is written and three models of C O subscript 2 composed each of a single central black sphere and two red spheres in a linear arrangement are shown.\" width=\"648\" height=\"310\" \/> Figure 1. Illustrated are two collisions that might take place between carbon monoxide and oxygen molecules. The orientation of the colliding molecules partially determines whether a reaction between the two molecules will occur.[\/caption]\r\n<p id=\"fs-idm58992896\">If the collision does take place with the correct orientation, there is still no guarantee that the reaction will proceed to form carbon dioxide. In addition to a proper orientation, the collision must also occur with sufficient energy to result in product formation. When reactant species collide with both proper orientation and adequate energy, they combine to form an unstable species called an\u00a0<span id=\"term545\" data-type=\"term\">activated complex<\/span>\u00a0or a\u00a0<span id=\"term546\" data-type=\"term\">transition state<\/span>. These species are very short lived and usually undetectable by most analytical instruments. In some cases, sophisticated spectral measurements have been used to observe transition states.<\/p>\r\n<p id=\"fs-idm207258608\">Collision theory explains why most reaction rates increase as concentrations increase. With an increase in the concentration of any reacting substance, the chances for collisions between molecules are increased because there are more molecules per unit of volume. More collisions mean a faster reaction rate, assuming the energy of the collisions is adequate.<\/p>\r\n\r\n<section id=\"fs-idm122484320\" data-depth=\"1\"><\/section>\r\n<h2>Activation Energy and the Arrhenius Equation<\/h2>\r\nThe minimum energy necessary to form a product during a collision between reactants is called the <strong>activation energy<\/strong> (<em>E<\/em><sub>a<\/sub>). The kinetic energy of reactant molecules plays an important role in a reaction because the energy necessary to form a product is provided by a collision of a reactant molecule with another reactant molecule. (In single-reactant reactions, activation energy may be provided by a collision of the reactant molecule with the wall of the reaction vessel or with molecules of an inert contaminant.) If the activation energy is much larger than the average kinetic energy of the molecules, the reaction will occur slowly: Only a few fast-moving molecules will have enough energy to react. If the activation energy is much smaller than the average kinetic energy of the molecules, the fraction of molecules possessing the necessary kinetic energy will be large; most collisions between molecules will result in reaction, and the reaction will occur rapidly.\r\n\r\n[caption id=\"\" align=\"alignright\" width=\"450\"]<img class=\"\" src=\"https:\/\/openstax.org\/resources\/c6711e3ad1036181079d6a0018566d990f483003\" alt=\"A graph is shown with the label, \u201cExtent of reaction,\u201d bon the x-axis and the label, \u201cEnergy,\u201d on the y-axis. Above the x-axis, a portion of a curve is labeled \u201cA plus B.\u201d From the right end of this region, the concave down curve continues upward to reach a maximum near the height of the y-axis. The peak of this curve is labeled, \u201cTransition state.\u201d A double sided arrow extends from a dashed red horizontal line that originates at the y-axis at a common endpoint with the curve to the peak of the curve. This arrow is labeled \u201cE subscript a.\u201d A second horizontal red dashed line segment is drawn from the right end of the black curve left to the vertical axis at a level significantly lower than the initial \u201cA plus B\u201d labeled end of the curve. The end of the curve that is shared with this segment is labeled, \u201cC plus D.\u201d The curve, which was initially dashed, continues as a solid curve from the maximum to its endpoint at the right side of the diagram. A second double sided arrow is shown. This arrow extends between the two dashed horizontal lines and is labeled, \u201ccapital delta H.\u201d\" width=\"450\" height=\"355\" \/> Figure 3. Reaction diagram for the exothermic reaction A + B \u2192 C + D[\/caption]\r\n\r\nFigure\u00a03 shows the energy relationships for the general reaction of a molecule of <em>A<\/em> with a molecule of <em>B<\/em> to form molecules of <em>C<\/em> and <em>D<\/em>:\u00a0[latex]A+B\\rightarrow C+D[\/latex].\r\n<p id=\"fs-idm92123120\">These\u00a0<span id=\"term548\" data-type=\"term\">reaction diagrams<\/span>\u00a0are widely used in chemical kinetics to illustrate various properties of the reaction of interest. Viewing the diagram from left to right, the system initially comprises reactants only,\u00a0<em data-effect=\"italics\">A<\/em>\u00a0+\u00a0<em data-effect=\"italics\">B<\/em>. Reactant molecules with sufficient energy can collide to form a high-energy activated complex or transition state. The unstable transition state can then subsequently decay to yield stable products,\u00a0<em data-effect=\"italics\">C<\/em>\u00a0+\u00a0<em data-effect=\"italics\">D<\/em>. The diagram depicts the reaction's activation energy,\u00a0<em data-effect=\"italics\">E<sub>a<\/sub><\/em>, as the energy difference between the reactants and the transition state. Using a specific energy, the\u00a0<em data-effect=\"italics\">enthalpy<\/em>\u00a0(see chapter on thermochemistry), the enthalpy change of the reaction, \u0394<em data-effect=\"italics\">H<\/em>, is estimated as the energy difference between the reactants and products. In this case, the reaction is exothermic (\u0394<em data-effect=\"italics\">H<\/em>\u00a0&lt; 0) since it yields a decrease in system enthalpy.<\/p>\r\nWe can use the <strong>Arrhenius equation<\/strong> to relate the activation energy and the rate constant, <em>k<\/em>, of a given reaction:\r\n<p style=\"text-align: center;\">[latex]k=A{e}^{-E_{\\text{a}}\\text{\/}RT}[\/latex]<\/p>\r\nIn this equation, <em>R<\/em> is the ideal gas constant, which has a value 8.314 J\/mol\/K, T is temperature on the Kelvin scale, <em>E<\/em><sub>a<\/sub> is the activation energy in joules per mole, <em>e<\/em> is the constant 2.7183, and <em>A<\/em> is a constant called the <strong>frequency factor<\/strong>, which is related to the frequency of collisions and the orientation of the reacting molecules.\r\n<p id=\"fs-idm378964576\">Postulates of collision theory are nicely accommodated by the Arrhenius equation. The frequency factor,\u00a0<em data-effect=\"italics\">A<\/em>, reflects how well the reaction conditions favor properly oriented collisions between reactant molecules. An increased probability of effectively oriented collisions results in larger values for\u00a0<em data-effect=\"italics\">A<\/em>\u00a0and faster reaction rates.<\/p>\r\n<p id=\"fs-idm493145248\">The exponential term, [latex]{e}^{-E_{\\text{a}}\\text{\/}RT}[\/latex], describes the effect of activation energy on reaction rate. According to kinetic molecular theory (see the module on gases), the temperature of matter is a measure of the average kinetic energy of its constituent atoms or molecules. The distribution of energies among the molecules composing a sample of matter at any given temperature is described by the plot shown in Figure 4(a). Two shaded areas under the curve represent the numbers of molecules possessing adequate energy (<em data-effect=\"italics\">RT<\/em>) to overcome the activation barriers (<em data-effect=\"italics\">E<sub>a<\/sub><\/em>). A lower activation energy results in a greater fraction of adequately energized molecules and a faster reaction.<\/p>\r\n<p id=\"fs-idm494984112\">The exponential term also describes the effect of temperature on reaction rate. A higher temperature represents a correspondingly greater fraction of molecules possessing sufficient energy (<em data-effect=\"italics\">RT<\/em>) to overcome the activation barrier (<em data-effect=\"italics\">E<sub>a<\/sub><\/em>), as shown in Figure 4(b). This yields a greater value for the rate constant and a correspondingly faster reaction rate.<\/p>\r\n\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"739\"]<img class=\"\" src=\"https:\/\/openstax.org\/resources\/2f83ee59874e6d78a5a300039ab038fe34360ab1\" alt=\"Two graphs are shown each with an x-axis label of \u201cKinetic energy\u201d and a y-axis label of \u201cFraction of molecules.\u201d Each contains a positively skewed curve indicated in red that begins at the origin and approaches the x-axis at the right side of the graph. In a, a small area under the far right end of the curve is shaded orange. An arrow points down from above the curve to the left end of this region where the shading begins. This arrow is labeled, \u201cHigher activation energy, E subscript a.\u201d In b, the same red curve appears, and a second curve is drawn in black. It is also positively skewed, but reaches a lower maximum value and takes on a broadened appearance as compared to the curve in red. In this graph, the red curve is labeled, \u201cT subscript 1\u201d and the black curve is labeled, \u201cT subscript 2.\u201d In the open space at the upper right on the graph is the label, \u201cT subscript 1 less than T subscript 2.\u201d As with the first graph, the region under the curves at the far right is shaded orange and a downward arrow labeled \u201cE subscript a\u201d points to the left end of this shaded region.\" width=\"739\" height=\"285\" \/> Figure 4. Molecular energy distributions showing numbers of molecules with energies exceeding (a) two different activation energies at a given temperature, and (b) a given activation energy at two different temperatures.[\/caption]\r\n\r\nA convenient approach to determining <em>E<\/em><sub>a<\/sub> for a reaction involves the measurement of <em>k<\/em> at different temperatures and using of an alternate version of the Arrhenius equation that takes the form of linear equation:\r\n<p style=\"text-align: center;\">[latex]\\begin{array}{ccc}\\hfill \\text{ln }k&amp; =&amp; \\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln }A\\hfill \\\\ \\hfill y&amp; =&amp; mx+b\\hfill \\end{array}[\/latex]<\/p>\r\nA plot of ln(<em>k<\/em>) versus [latex]\\dfrac{1}{T}[\/latex] is linear with the slope [latex]\\dfrac{{-}{E}_{\\text{a}}}{R}[\/latex], from which <em>E<\/em><sub>a<\/sub> may be determined. The intercept gives the value of ln(<em>A<\/em>).\r\n<div class=\"textbox examples\">\r\n<h3>Example 1:\u00a0Determination of <em>E<\/em><sub>a<\/sub><\/h3>\r\nThe variation of the rate constant with temperature for the decomposition of HI(<em>g<\/em>) to H<sub>2<\/sub>(<em>g<\/em>) and I<sub>2<\/sub>(<em>g<\/em>) is given below. What is the activation energy for the reaction?\r\n<p style=\"text-align: center;\">[latex]\\text{2HI}\\left(g\\right)\\rightarrow{\\text{H}}_{2}\\left(g\\right)+{\\text{I}}_{2}\\left(g\\right)[\/latex]<\/p>\r\n\r\n<table id=\"fs-idm125968016\" class=\"medium unnumbered\" summary=\"This table has two columns and six rows. The first column is labeled, \u201cT ( K ),\u201d and the second is labeled, \u201ck ( L \/ mol \/ s ).\u201d Under the first column are the numbers: 555, 575, 645, 700, and 781. Under the second column are the numbers: 3.52 times ten to the negative 7; 1.22 times ten to the negative 6; 8.59 times ten to the negative 5; 1.16 times ten to the negative 3; and 3.95 times ten to the negative 2.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th><em>T<\/em> (K)<\/th>\r\n<th><em>k<\/em> (L\/mol\/s)<\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>555<\/td>\r\n<td>3.52 \u00d7 10<sup>\u20137<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>575<\/td>\r\n<td>1.22 \u00d7 10<sup>\u20136<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>645<\/td>\r\n<td>8.59 \u00d7 10<sup>\u20135<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>700<\/td>\r\n<td>1.16 \u00d7 10<sup>\u20133<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>781<\/td>\r\n<td>3.95 \u00d7 10<sup>\u20132<\/sup><\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\n[reveal-answer q=\"875102\"]Show Solution[\/reveal-answer]\r\n[hidden-answer a=\"875102\"]\r\n\r\nValues of [latex]\\frac{1}{T}[\/latex] and ln <em>k<\/em> are:\r\n<table id=\"fs-idp10812288\" class=\"medium unnumbered\" summary=\"This table has two columns and six rows. The first row is labeled, \u201c1 over T ( K superscript negative 1 ),\u201d and, \u201cl n k.\u201d Under the first column are the numbers: 1.80 times ten to the negative 3; 1.74 times ten to the negative 3; 1.55 times ten to the negative 3; 1.43 times ten to the negative 3; and 1.28 times ten to the negative 3. Under the second column are the numbers: negative 14.860, negative 13.617, negative 9.362, negative 6.759, and negative 3.231.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th>[latex]\\frac{1}{\\text{T}}\\left({\\text{K}}^{-1}\\right)[\/latex]<\/th>\r\n<th>ln <em>k<\/em><\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>1.80 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u201314.860<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>1.74 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u201313.617<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>1.55 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u20139.362<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>1.43 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u20136.759<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>1.28 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u20133.231<\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\nFigure\u00a05 is a graph of ln<em>k<\/em> versus [latex]\\frac{1}{T}.[\/latex]\r\n<p id=\"fs-idm197951232\">In practice, the equation of the line (slope and\u00a0<em data-effect=\"italics\">y<\/em>-intercept) that best fits these plotted data points would be derived using a statistical process called regression. This is helpful for most experimental data because a perfect fit of each data point with the line is rarely encountered. For the data here, the fit is nearly perfect and the slope may be estimated using any two of the provided data pairs. Using the first and last data points permits estimation of the slope.<\/p>\r\n\r\n<div id=\"CNX_Chem_12_05_ArrhPlot\" class=\"os-figure\"><\/div>\r\n\r\n[caption id=\"\" align=\"aligncenter\" width=\"400\"]<img class=\"\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images-archive-read-only\/wp-content\/uploads\/sites\/887\/2015\/04\/23212313\/CNX_Chem_12_05_ArrhPlot1.jpg\" alt=\"A graph is shown with the label \u201c1 divided by T ( K superscript negative 1 )\u201d on the x-axis and \u201cl n k\u201d on the y-axis. The horizontal axis has markings at 1.4 times 10 superscript 3, 1.6 times 10 superscript 3, and 1.8 times 10 superscript 3. The y-axis shows markings at intervals of 2 from negative 14 through negative 2. A decreasing linear trend line is drawn through five points at the coordinates: (1.28 times 10 superscript negative 3, negative 3.231), (1.43 times 10 superscript negative 3, negative 6.759), (1.55 times 10 superscript negative 3, negative 9.362), (1.74 times 10 superscript negative 3, negative 13.617), and (1.80 times 10 superscript negative 3, negative 14.860). A vertical dashed line is drawn from a point just left of the data point nearest the y-axis. Similarly, a horizontal dashed line is draw from a point just above the data point closest to the x-axis. These dashed lines intersect to form a right triangle with a vertical leg label of \u201ccapital delta l n k\u201d and a horizontal leg label of \u201ccapital delta 1 divided by T.\u201d\" width=\"400\" height=\"379\" data-media-type=\"image\/jpeg\" \/> Figure\u00a05. This graph shows the linear relationship between lnk and 1\/T for the reaction 2HI \u2192 H<sub>2<\/sub>\u00a0+ I<sub>2<\/sub> according to the Arrhenius equation.[\/caption]\r\n\r\nThe slope of this line is given by the following expression:\r\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill \\text{Slope}&amp; =\\dfrac{\\Delta\\left(\\mathrm{ln}k\\right)}{\\Delta\\left(\\frac{1}{T}\\right)}\\hfill \\\\ &amp; =\\dfrac{\\left(-14.447\\right)-\\left(-2.593\\right)}{\\left(1.78\\times {10}^{-3}{\\text{K}}^{-1}\\right)-\\left(1.25\\times {10}^{-3}{\\text{K}}^{-1}\\right)}\\hfill \\\\ &amp; =\\dfrac{-11.854}{0.53\\times {10}^{-3}{\\text{K}}^{-1}}=2.2\\times {10}^{4}\\text{K}\\hfill \\\\ &amp; =-\\dfrac{{E}_{\\text{a}}}{R}\\hfill \\end{array}[\/latex]<\/p>\r\nThus:\r\n<p style=\"padding-left: 30px;\"><em>E<\/em><sub>a<\/sub> = \u2013slope \u00d7 <em>R<\/em> = \u2013(\u20132.2 \u00d7 10<sup>4<\/sup> K \u00d7 8.314 J mol<sup>\u20131<\/sup> K<sup>\u20131<\/sup>)<\/p>\r\n<p style=\"padding-left: 30px;\"><em>E<\/em><sub>a<\/sub> = 1.8 \u00d7 10<sup>5<\/sup> J mol<sup>\u20131<\/sup><\/p>\r\nIn many situations, it is possible to obtain a reasonable estimate of the activation energy without going through the entire process of constructing the Arrhenius plot. The Arrhenius equation:\r\n<p style=\"text-align: center;\">[latex]\\text{ln}k=\\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln}A[\/latex]<\/p>\r\ncan be rearranged as shown to give:\r\n<p style=\"text-align: center;\">[latex]\\dfrac{\\Delta\\left(\\text{ln}k\\right)}{\\Delta\\left(\\frac{1}{T}\\right)}=-\\dfrac{{E}_{\\text{a}}}{R}[\/latex]<\/p>\r\nor\r\n<p style=\"text-align: center;\">[latex]\\text{ln}\\dfrac{{k}_{1}}{{k}_{2}}=\\dfrac{{E}_{\\text{a}}}{R}\\left(\\dfrac{1}{{T}_{2}}-\\dfrac{1}{{T}_{1}}\\right)[\/latex]<\/p>\r\nThis equation can be rearranged to give a one-step calculation to obtain an estimate for the activation energy:\r\n<p style=\"text-align: center;\">[latex]{E}_{\\text{a}}=-R\\left(\\dfrac{\\text{ln}{k}_{2}-\\text{ln}{k}_{1}}{\\left(\\frac{1}{{T}_{2}}\\right)-\\left(\\frac{1}{{T}_{1}}\\right)}\\right)[\/latex]<\/p>\r\nUsing the experimental data presented below, we can simply select two data entries. For this example, we select the first entry and the last entry:\r\n<table id=\"fs-idp62524656\" class=\"medium unnumbered\" summary=\"This table contains four columns and three rows. The first row is a header row, and it labels each column, \u201cT ( K ),\u201d \u201ck ( L \/ mol \/ s ),\u201d \u201c1 over T ( K superscript negative 1),\u201d and, \u201cl n k.\u201d Under the \u201cT ( K )\u201d column are the numbers 555 and 781. Under the \u201ck ( L \/ mol \/ s )\u201d column are the numbers 3.52 times ten to the negative 7 and 3.95 times ten to the negative 2. Under the \u201c1 over T ( K superscript negative 1)\u201d column are the numbers 1.80 times ten to the negative 3 and 1.28 times ten to the negative 3. Under the \u201cl n k\u201d column are the numbers negative 14.860 and negative 3.231.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th><em>T<\/em> (K)<\/th>\r\n<th><em>k<\/em> (L\/mol\/s)<\/th>\r\n<th>[latex]\\frac{1}{T}\\left({\\text{K}}^{-1}\\right)[\/latex]<\/th>\r\n<th>ln<em>k<\/em><\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>555<\/td>\r\n<td>3.52 \u00d7 10<sup>\u20137<\/sup><\/td>\r\n<td>1.80 \u00d7 10<sup>\u20133<\/sup><\/td>\r\n<td>\u201314.860<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>781<\/td>\r\n<td>3.95 \u00d7 10<sup>\u20132<\/sup><\/td>\r\n<td>1.28 \u00d7 10<sup>\u20133<\/sup><\/td>\r\n<td>\u20133.231<\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\nAfter calculating [latex]\\dfrac{1}{T}[\/latex] and ln <em>k<\/em>, we can substitute into the equation:\r\n<p style=\"text-align: center;\">[latex]{E}_{\\text{a}}=-8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(\\dfrac{-3.231-\\left(-14.860\\right)}{1.28\\times {10}^{-3}{\\text{K}}^{-1}-1.80\\times {10}^{-3}{\\text{K}}^{-1}}\\right)[\/latex]<\/p>\r\nand the result is <em>E<\/em><sub>a<\/sub> = [latex]1.8\\times{10}^{5}\\text{ J Mol}^{-1}[\/latex] or [latex]180\\text{ kJ\/mol}[\/latex].\r\n\r\nThis method is very effective, especially when a limited number of temperature-dependent rate constants are available for the reaction of interest.\r\n\r\n[\/hidden-answer]\r\n<h4>Check Your Learning<\/h4>\r\nThe rate constant for the rate of decomposition of N<sub>2<\/sub>O<sub>5<\/sub> to NO and O<sub>2<\/sub> in the gas phase is 1.66 L\/mol\/s at 650 K and 7.39 L\/mol\/s at 700 K:\r\n<p style=\"text-align: center;\">[latex]{\\text{2N}}_{2}{\\text{O}}_{5}\\left(g\\right)\\rightarrow 4\\text{NO}\\left(g\\right)+{\\text{3O}}_{2}\\left(g\\right)[\/latex]<\/p>\r\nAssuming the kinetics of this reaction are consistent with the Arrhenius equation, calculate the activation energy for this decomposition.\r\n\r\n[reveal-answer q=\"878948\"]Show Solution[\/reveal-answer]\r\n[hidden-answer a=\"878948\"]\r\n\r\n[latex]1.1\\times{10}^{5}\\text{ J mol}^{-1}[\/latex] or 110 kJ\/mol[\/hidden-answer]\r\n\r\n<\/div>\r\n<div class=\"textbox key-takeaways\">\r\n<h3>Key Concepts and Summary<\/h3>\r\nChemical reactions require collisions between reactant species. These reactant collisions must be of proper orientation and sufficient energy in order to result in product formation. Collision theory provides a simple but effective explanation for the effect of many experimental parameters on reaction rates. The Arrhenius equation describes the relation between a reaction\u2019s rate constant and its activation energy, temperature, and dependence on collision orientation.\r\n<h4>Key Equations<\/h4>\r\n<ul>\r\n \t<li>[latex]k=A{e}^{{-}{E}_{\\text{a}}\\text{\/}RT}[\/latex]<\/li>\r\n \t<li>[latex]\\text{ln}k=\\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln}A[\/latex]<\/li>\r\n \t<li>[latex]\\text{ln}\\dfrac{{k}_{1}}{{k}_{2}}=\\dfrac{{E}_{\\text{a}}}{R}\\left(\\dfrac{1}{{T}_{2}}-\\dfrac{1}{{T}_{1}}\\right)[\/latex]<\/li>\r\n<\/ul>\r\n<\/div>\r\n<div class=\"textbox exercises\">\r\n<h3>Try It<\/h3>\r\n<ol>\r\n \t<li>Chemical reactions occur when reactants collide. What are two factors that may prevent a collision from producing a chemical reaction?<\/li>\r\n \t<li>When every collision between reactants leads to a reaction, what determines the rate at which the reaction occurs?<\/li>\r\n \t<li>What is the activation energy of a reaction, and how is this energy related to the activated complex of the reaction?<\/li>\r\n \t<li>Account for the relationship between the rate of a reaction and its activation energy.<\/li>\r\n \t<li>Describe how graphical methods can be used to determine the activation energy of a reaction from a series of data that includes the rate of reaction at varying temperatures.<\/li>\r\n \t<li>How does an increase in temperature affect rate of reaction? Explain this effect in terms of the collision theory of the reaction rate.<\/li>\r\n \t<li>The rate of a certain reaction doubles for every 10 \u00b0C rise in temperature.\r\n<ol style=\"list-style-type: lower-alpha;\">\r\n \t<li>How much faster does the reaction proceed at 45 \u00b0C than at 25 \u00b0C?<\/li>\r\n \t<li>How much faster does the reaction proceed at 95 \u00b0C than at 25 \u00b0C?<\/li>\r\n<\/ol>\r\n<\/li>\r\n \t<li>In an experiment, a sample of NaClO<sub>3<\/sub> was 90% decomposed in 48 min. Approximately how long would this decomposition have taken if the sample had been heated 20 \u00b0C higher?<\/li>\r\n \t<li>The rate constant at 325 \u00b0C for the decomposition reaction [latex]{\\text{C}}_{4}{\\text{H}}_{8}\\rightarrow{2\\text{C}}_{2}{\\text{H}}_{4}[\/latex] is 6.1 \u00d7 10<sup>\u22128<\/sup> s<sup>\u22121<\/sup>, and the activation energy is 261 kJ per mole of C<sub>4<\/sub>H<sub>8<\/sub>. Determine the frequency factor for the reaction.<\/li>\r\n \t<li>The rate constant for the decomposition of acetaldehyde, CH<sub>3<\/sub>CHO, to methane, CH<sub>4<\/sub>, and carbon monoxide, CO, in the gas phase is 1.1 \u00d7 10<sup>\u22122<\/sup> L\/mol\/s at 703 K and 4.95 L\/mol\/s at 865 K. Determine the activation energy for this decomposition.<\/li>\r\n \t<li>An elevated level of the enzyme alkaline phosphatase (ALP) in the serum is an indication of possible liver or bone disorder. The level of serum ALP is so low that it is very difficult to measure directly. However, ALP catalyzes a number of reactions, and its relative concentration can be determined by measuring the rate of one of these reactions under controlled conditions. One such reaction is the conversion of p-nitrophenyl phosphate (PNPP) to p-nitrophenoxide ion (PNP) and phosphate ion. Control of temperature during the test is very important; the rate of the reaction increases 1.47 times if the temperature changes from 30 \u00b0C to 37 \u00b0C. What is the activation energy for the ALP\u2013catalyzed conversion of PNPP to PNP and phosphate?<\/li>\r\n \t<li>In terms of collision theory, to which of the following is the rate of a chemical reaction proportional?\r\n<ol style=\"list-style-type: lower-alpha;\">\r\n \t<li>the change in free energy per second<\/li>\r\n \t<li>the change in temperature per second<\/li>\r\n \t<li>the number of collisions per second<\/li>\r\n \t<li>the number of product molecules<\/li>\r\n<\/ol>\r\n<\/li>\r\n \t<li>Hydrogen iodide, HI, decomposes in the gas phase to produce hydrogen, H<sub>2<\/sub>, and iodine, I<sub>2<\/sub>. The value of the rate constant, <em>k<\/em>, for the reaction was measured at several different temperatures and the data are shown here:\r\n<table id=\"fs-idm124800496\" class=\"medium unnumbered\" summary=\"This table has two columns and five rows. The first column is labeled, \u201cTemperature ( K ),\u201d and the second column is labeled, \u201ck ( M superscript negative 1 s superscript negative 1 ).\u201d Under the first column are the numbers: 555, 575, 645, and 700. Under the second column are the numbers: 6.23 times ten to the negative 7; 2.42 times ten to the negative 6; 1.44 times ten to the negative 4; and 2.01 times ten to the negative 3.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th>Temperature (K)<\/th>\r\n<th><em>k<\/em> (<em>M<\/em><sup>\u22121<\/sup> s<sup>\u22121<\/sup>)<\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>555<\/td>\r\n<td>6.23 \u00d7 10<sup>\u22127<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>575<\/td>\r\n<td>2.42 \u00d7 10<sup>\u22126<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>645<\/td>\r\n<td>1.44 \u00d7 10<sup>\u22124<\/sup><\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>700<\/td>\r\n<td>2.01 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\nWhat is the value of the activation energy (in kJ\/mol) for this reaction?<\/li>\r\n \t<li>The element Co exists in two oxidation states, Co(II) and Co(III), and the ions form many complexes. The rate at which one of the complexes of Co(III) was reduced by Fe(II) in water was measured. Determine the activation energy of the reaction from the following data:\r\n<table id=\"fs-idm163198896\" class=\"medium unnumbered\" summary=\"This table contains two columns and three rows. The first row is a header row, and it labels each column, \u201cT ( K )\u201d and \u201ck ( s superscript negative 1 ).\u201d Under the first column are the numbers 293 and 298. Under the second column are the numbers 0.054 and 0.100.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th><em>T<\/em> (K)<\/th>\r\n<th><em>k<\/em> (s<sup>\u22121<\/sup>)<\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>293<\/td>\r\n<td>0.054<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>298<\/td>\r\n<td>0.100<\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\n<\/li>\r\n \t<li>The hydrolysis of the sugar sucrose to the sugars glucose and fructose, [latex]{\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}+{\\text{H}}_{2}\\text{O}\\rightarrow{\\text{C}}_{6}{\\text{H}}_{12}{\\text{O}}_{6}+{\\text{C}}_{6}{\\text{H}}_{12}{\\text{O}}_{6}[\/latex]follows a first-order rate equation for the disappearance of sucrose: [latex]\\text{Rate}=k\\left[{\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}\\right][\/latex] (The products of the reaction, glucose and fructose, have the same molecular formulas but differ in the arrangement of the atoms in their molecules.)\r\n<ol style=\"list-style-type: lower-alpha;\">\r\n \t<li>In neutral solution, <em>k<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup>\u00a0at 27 \u00b0C and 8.5 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup> at 37 \u00b0C. Determine the activation energy, the frequency factor, and the rate constant for this equation at 47 \u00b0C (assuming the kinetics remain consistent with the Arrhenius equation at this temperature).<\/li>\r\n \t<li>When a solution of sucrose with an initial concentration of 0.150 <em>M<\/em> reaches equilibrium, the concentration of sucrose is 1.65 \u00d7 10<sup>\u22127<\/sup><em>M<\/em>. How long will it take the solution to reach equilibrium at 27 \u00b0C in the absence of a catalyst? Because the concentration of sucrose at equilibrium is so low, assume that the reaction is irreversible.<\/li>\r\n \t<li>Why does assuming that the reaction is irreversible simplify the calculation in part (b)?<\/li>\r\n<\/ol>\r\n<\/li>\r\n \t<li>Use the <a href=\"https:\/\/phet.colorado.edu\/en\/simulation\/reactions-and-rates\" target=\"_blank\" rel=\"noopener\">PhET Reactions &amp; Rates interactive simulation<\/a> to simulate a system. On the \u201cSingle collision\u201d tab of the simulation applet, enable the \u201cEnergy view\u201d by clicking the \u201c+\u201d icon. Select the first [latex]A+BC\\rightarrow AB+C[\/latex] reaction (A is yellow, B is purple, and C is navy blue). Using the \u201cstraight shot\u201d default option, try launching the <em>A<\/em> atom with varying amounts of energy. What changes when the Total Energy line at launch is below the transition state of the Potential Energy line? Why? What happens when it is above the transition state? Why?<\/li>\r\n \t<li>Use the <a href=\"https:\/\/phet.colorado.edu\/en\/simulation\/reactions-and-rates\" target=\"_blank\" rel=\"noopener\">PhET Reactions &amp; Rates interactive simulation<\/a> to simulate a system. On the \u201cSingle collision\u201d tab of the simulation applet, enable the \u201cEnergy view\u201d by clicking the \u201c+\u201d icon. Select the first [latex]A+BC\\rightarrow AB+C[\/latex] reaction (A is yellow, B is purple, and C is navy blue). Using the \u201cangled shot\u201d option, try launching the <em>A<\/em> atom with varying angles, but with more Total energy than the transition state. What happens when the <em>A<\/em> atom hits the <em>BC<\/em> molecule from different directions? Why?<\/li>\r\n<\/ol>\r\n[reveal-answer q=\"938149\"]Show Selected Solutions[\/reveal-answer]\r\n[hidden-answer a=\"938149\"]\r\n\r\n1. The reactants either may be moving too slowly to have enough kinetic energy to exceed the activation energy for the reaction, or the orientation of the molecules when they collide may prevent the reaction from occurring.\r\n\r\n3. The activation energy is the minimum amount of energy necessary to form the activated complex in a reaction. It is usually expressed as the energy necessary to form one mole of activated complex.\r\n\r\n5.\u00a0After finding <em>k<\/em> at several different temperatures, a plot of ln<em>k<\/em> versus[latex]\\frac{{-}{E}_{\\text{a}}}{R}[\/latex] gives a straight line with the slope [latex]\\frac{1}{T},[\/latex] from which <em>E<\/em><sub>a<\/sub> may be determined.\r\n\r\n7.\u00a0(a) The rate doubles for each 10 \u00b0C rise in temperature; 45 \u00b0C is a 20 \u00b0C increases over 25 \u00b0C. Thus, the rate doubles two times, or 2<sup>2<\/sup> (rate at 25 \u00b0C) = 4-times faster.\r\n\r\n(b) 95 \u00b0C is a 70 \u00b0C increases over 25 \u00b0C. Thus the rate doubles seven times, or 2<sup>7<\/sup> (rate at 25 \u00b0C) = 128-times faster.\r\n\r\n9.\u00a0The rate constant <em>k<\/em> is related to the activation energy <em>E<\/em><sub>a<\/sub> by a relationship known as the Arrhenius equation. Its form is:\r\n\r\n[latex]k=A\\times {10}^{-\\left({E}_{\\text{a}}\\text{\/}2.303RT\\right)}=A\\times {e}^{-\\left({E}_{\\text{a}}\\text{\/}RT\\right)}[\/latex]\r\n\r\nwhere <em>A<\/em> is the frequency factor. Using the data provided, and converting kilojoules to joules:\r\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill 6.1\\times {10}^{-8}{\\text{s}}^{-1}&amp; =A\\times {10}^{-\\left[+261.000\\text{J}\\text{\/}2.303\\text{(}8.314\\text{J}{\\text{K}}^{-1}\\text{)}\\text{(}325+\\text{273)K}\\right]}\\\\ &amp; =A\\times {10}^{-22.8}\\hfill \\end{array}[\/latex]<\/p>\r\n[latex]A=\\frac{6.1\\times {10}^{-8}{\\text{s}}^{-1}}{1.58\\times {10}^{-23}}=3.9\\times {10}^{15}{\\text{s}}^{-1}[\/latex]\r\n\r\n11.\u00a0Note that [latex]{e}^{\\text{-}x}={10}^{\\text{-}x\\text{\/}2.303}.[\/latex] Changes in rate brought about by temperature changes are governed by the Arrhenius equation: [latex]k=A\\times {10}^{\\text{-}{E}_{\\text{a}}\\text{\/}2.303RT}.[\/latex] In this particular reaction, <em>k<\/em> increases by 1.47 as <em>T<\/em> changes from 30 \u00b0C (303 K). The Arrhenius equation may be solved for <em>A<\/em> under both sets of conditions and then <em>A<\/em> can be eliminated between the two equations. Eliminating <em>k<\/em> from both sides, taking logs, and rearranging gives:\r\n<p style=\"text-align: center;\">[latex]\\begin{array}{l}\\frac{{-}{E}_{\\text{a}}}{2.303\\times 8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(310\\text{K}\\right)}=\\mathrm{log}1.47-\\frac{{E}_{\\text{a}}}{2.303\\times 8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(303\\text{K}\\right)}\\\\ \\frac{{-}{E}_{\\text{a}}}{5935.6\\text{J}{\\text{mol}}^{-1}}=0.1673-\\frac{{E}_{\\text{a}}}{5801.6\\text{J}{\\text{mol}}^{-1}}\\\\ \\frac{{E}_{\\text{a}}}{5801.6}-\\frac{{E}_{\\text{a}}}{5935.6}=0.1673\\text{J}{\\text{mol}}^{-1}\\end{array}[\/latex]<\/p>\r\n<em>E<\/em><sub>a<\/sub>(1.72366 \u00d7 10<sup>\u22124<\/sup> - 1.68474 \u00d7 10<sup>\u22124<\/sup>) = 0.1673 J\/mol\r\n\r\n3.892 \u00d7 10<sup>\u22126<\/sup><em>E<\/em><sub>a<\/sub> = 0.1673 J\/mol\r\n\r\n<em>E<\/em><sub>a<\/sub> = 42986 J\/mol = 43.0 kJ\/mol\r\n\r\n13. \u00a0E<sub>a<\/sub> may be determined from a plot of ln <em>k<\/em> against [latex]\\frac{1}{T}[\/latex] that gives a straight line whose slope is [latex]\\frac{{-}{E}_{\\text{a}}}{R}:[\/latex]\r\n<table id=\"fs-idm126392640\" class=\"medium unnumbered\" summary=\"This table contains four columns and five rows. The first row is a header row, and it labels each column, \u201cT ( K ),\u201d \u201c1 over T times 10 to the third power,\u201d \u201ck ( M superscript negative 1 s superscript negative 1 ),\u201d and \u201cl n k.\u201d Under the \u201cT ( K )\u201d column are the numbers: 555, 575, 645, and 700. Under the \u201c1 over T times 10 to the third power\u201d column are the numbers 1.802, 1.739, 1.550, and 1.429. Under the \u201ck ( M superscript negative 1 s superscript negative 1 )\u201d column are the numbers: 6.23 times ten to the negative 7; 2.42 times ten to the negative 6; 1.44 times ten to the negative 4; 2.42 times ten to the negative 3. Under the \u201cl n k\u201d column are the numbers: negative 14.289, negative 12.932, negative 8.846, and negative 6.210.\" data-label=\"\">\r\n<thead>\r\n<tr valign=\"top\">\r\n<th><em>T<\/em> (K)<\/th>\r\n<th>[latex]\\frac{1}{T}\\times {10}^{3}[\/latex]<\/th>\r\n<th><em>k<\/em> (<em>M<\/em><sup>-1<\/sup> s<sup>-1<\/sup>)<\/th>\r\n<th>ln<em>k<\/em><\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr valign=\"top\">\r\n<td>555<\/td>\r\n<td>1.802<\/td>\r\n<td>6.23 \u00d7 10<sup>\u22127<\/sup><\/td>\r\n<td>\u221214.289<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>575<\/td>\r\n<td>1.739<\/td>\r\n<td>2.42 \u00d7 10<sup>\u22126<\/sup><\/td>\r\n<td>\u221212.932<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>645<\/td>\r\n<td>1.550<\/td>\r\n<td>1.44 \u00d7 10<sup>\u22124<\/sup><\/td>\r\n<td>\u22128.846<\/td>\r\n<\/tr>\r\n<tr valign=\"top\">\r\n<td>700<\/td>\r\n<td>1.429<\/td>\r\n<td>2.42 \u00d7 10<sup>\u22123<\/sup><\/td>\r\n<td>\u22126.210<\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\nA plot of this data shows a straight line. Two points marked by an X are picked for convenience of reading and are used to determine the slope of the line:\r\n\r\n<img class=\"\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images-archive-read-only\/wp-content\/uploads\/sites\/887\/2015\/04\/23212314\/CNX_Chem_12_05_Slope_img1.jpg\" alt=\"A graph is shown with the label, \u201c1 divided by T times 10 superscript 3 ( K superscript negative 1 ),\u201d on the x-axis and, \u201cln k,\u201d on the y-axis. The x-axis has markings beginning at 1.4, increasing by 0.10 up to and including 1.80. The y-axis shows markings of negative 14 through negative 6 at intervals of 1. A decreasing linear trend line is drawn through four points represented as black dots at the coordinates: (1.429, negative 6.210), (1.550, negative 8.846), (1.739, negative 12.932), and (1.802, negative 14.289). A vertical dashed line is drawn from the point (negative 6.75, 1.45) which is just right of the data point nearest the y-axis. Similarly, a horizontal dashed line is draw from the point (negative 14.75, 1.825) which is just below the data point closest to the x-axis. These dashed lines intersect to form a right triangle with a vertical leg label of \u201ccapital delta l n k\u201d and a horizontal leg label of \u201ccapital delta 1 divided by T.\u201d\" width=\"350\" height=\"491\" data-media-type=\"image\/jpeg\" \/>\r\n\r\n[latex]\\begin{array}{lll}\\hfill \\text{slope}&amp; =&amp; \\frac{-14.750-\\left(-6.750\\right)}{1.825\\times {10}^{-3}-1.450\\times {10}^{-3}}=\\frac{-8.000}{3.75\\times {10}^{-4}}=-2.13\\times {10}^{4}\\hfill \\\\ \\hfill \\frac{{-}{E}_{\\text{a}}}{R}&amp; =&amp; -2.13\\times {10}^{4}\\hfill \\end{array}[\/latex]\r\n\r\n<em>E<\/em><sub>a<\/sub> = \u22122.13 \u00d7 10<sup>4<\/sup> \u00d7 8.314 J\/mol = 177 kJ\/mol\r\n\r\n15. \u00a0(a) The text demonstrates that the value of <em>E<\/em><sub>a<\/sub> may be determined from a plot of log<em>k<\/em> against [latex]\\frac{1}{T}[\/latex] that gives a straight line whose slope is [latex]\\frac{{-}{E}_{\\text{a}}}{2.303R}.[\/latex] This relationship is based on the equation [latex]\\text{ln}k=\\text{ln}A-\\frac{{E}_{\\text{a}}}{RT}[\/latex] or [latex]\\text{log}k=\\text{log}A-\\frac{{E}_{\\text{a}}}{2.303RT}[\/latex] where [latex]\\text{In}k=2.303\\text{log}k.[\/latex] Only two data points are given, and these must determine a straight line when log<em>k<\/em> is plotted against 1\/<em>T<\/em>. The values needed are:\r\n\r\n<em>k<\/em><sub>1<\/sub> = 2.1 \u00d7 10<sup>\u221211<\/sup>\r\n\r\nlog <em>k<\/em><sub>1<\/sub> = \u221210.6778\r\n\r\n<em>k<\/em><sub>2<\/sub> = 8.5 \u00d7 10<sup>-11<\/sup>\r\n\r\nlog <em>k<\/em><sub>2<\/sub> = -10.0706\r\n\r\n<em>T<\/em><sub>1<\/sub> = 27 \u00b0C = 300 K\r\n\r\n[latex]\\frac{1}{{T}_{1}}[\/latex] = 3.3333 \u00d7 10<sup>-3<\/sup>\r\n\r\n<em>T<\/em><sub>2<\/sub> = 37 \u00b0C = 310 K\r\n\r\n[latex]\\frac{1}{{T}_{2}}[\/latex] = 3.2258 \u00d7 10<sup>-3<\/sup>\r\n\r\nThe slope of the line determined by these points is given by:\r\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill \\text{Slope}&amp; =\\frac{\\Delta\\left(\\text{log}k\\right)}{\\Delta\\frac{1}{T}}=\\frac{\\left(-10.0706\\right)-\\left(-10.6778\\right)}{\\left(3.2258\\times {10}^{-3}\\right)-\\left(3.3333\\times {10}^{-3}\\right)}\\hfill \\\\ &amp; =\\frac{0.6072}{-0.1075\\times {10}^{-3}}=-5648\\hfill \\end{array}[\/latex]<\/p>\r\n<em>E<\/em><sub>a<\/sub> = 2.303(8.314 J\/mol)(\u22125648) = 108,100 J = 108 kJ\r\n\r\nWhenever differences of very small numbers are taken, such as the reciprocals of <em>T<\/em> provided, an inherent problem occurs. To have accurate differences, a larger number of significant figures than justified by the data must be used. Thus five figures were used to obtain the value <em>E<\/em><sub>a<\/sub> = 108 kJ. This difficulty may be alleviated by the following approach.\r\n\r\nFor only two data points, the Arrhenius equation [latex]k=A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}[\/latex] may be used in an equally accurate, analytical solution for <em>E<\/em><sub>a<\/sub>. This application is possible because the value of <em>A<\/em> will be the same throughout the course of the reaction. Once the value of <em>E<\/em><sub>a<\/sub> is determined, the value of <em>A<\/em> may be determined from either Equation (1) or (2). Then <em>k<\/em> at 47 \u00b0C may be determined using the value of <em>E<\/em><sub>a<\/sub> and <em>A<\/em> so determined. The procedure is as follows:\r\n\r\n[latex]\\begin{array}{cccc}\\hfill k&amp; =&amp; A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}\\hfill &amp; \\\\ \\hfill 2.1\\times {10}^{-11}{\\text{s}}^{-1}&amp; =&amp; A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}\\hfill &amp; \\text{(equation 1)}\\hfill \\\\ \\hfill 8.5\\times {10}^{-11}{\\text{s}}^{-1}&amp; =&amp; A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}\\hfill &amp; \\text{(equation 2)}\\hfill \\end{array}[\/latex]\r\n\r\nEquating the values of <em>A<\/em> as solved from equations (1) and (2):\r\n\r\n[latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}=8.5\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}[\/latex] or [latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}5744}=8.5\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}5936}.[\/latex]\r\n\r\nTaking common logs of both sides gives:\r\n\r\n[latex]\\begin{array}{l}\\\\ \\\\ \\left(\\mathrm{log}2.1\\times {10}^{-11}\\right)+\\frac{{E}_{\\text{a}}}{5744}=\\left(\\mathrm{log}8.5\\times {10}^{-11}\\right)+\\frac{{E}_{\\text{a}}}{5936}-10.68+\\frac{{E}_{\\text{a}}}{5744}=-10.07+\\frac{{E}_{\\text{a}}}{5936}\\\\ {E}_{\\text{a}}\\left(\\frac{1}{5744}-\\frac{1}{5936}\\right)=-10.07+10.68\\\\ {E}_{\\text{a}}\\left(1.741\\times {10}^{-4}-1.685\\times {10}^{-4}\\right)=0.61\\\\ {E}_{\\text{a}}=\\frac{0.61}{0.056\\times {10}^{-4}}=109\\text{kJ}\\end{array}[\/latex]\r\n\r\nThe value of <em>A<\/em> may be found from either equation (1) or (2). Using equation (1):\r\n\r\n[latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}=A\\times {10}^{\\text{-109,000\/2.303(8.314)(300)}}=A\\times {10}^{-18.98}[\/latex]\r\n\r\n<em>A<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup> \u00d7 10<sup>+18.91<\/sup> = 2.1 \u00d7 10<sup>\u221211<\/sup>(9.55 \u00d7 10<sup>18<\/sup> s<sup>\u22121<\/sup>) = 2.0 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup>\r\n\r\nThe value of <em>k<\/em> at 47\u00b0C may be determined from the Arrhenius equation now that the values of <em>E<\/em><sub>a<\/sub> and <em>A<\/em> have been calculated:\r\n\r\n[latex]\\begin{array}{cc}\\hfill k&amp; =A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}\\hfill \\\\ &amp; =2.0\\times {10}^{8}{\\text{s}}^{-1}\\times {10}^{\\text{-109,000 J\/2.303(8.314 J}{\\text{K}}^{-1}\\text{)}\\text{(320 K)}}\\hfill \\end{array}[\/latex]\r\n\r\n= 2.0 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup> \u00d7 10<sup>\u221217.79<\/sup> = 2.0 \u00d7 10<sup>8<\/sup>(1.62 \u00d7 10<sup>\u221218<\/sup>) = 3.2 \u00d7 10<sup>\u221210<\/sup> s<sup>\u22121<\/sup>\r\n\r\nUsing the earlier value of <em>E<\/em><sub>a<\/sub> = 108 kJ, the calculated value of <em>A<\/em> is 1.3 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup>, and <em>k<\/em> = 3.1 \u00d7 10<sup>\u221210<\/sup> s<sup>\u22121<\/sup>. Either answer is acceptable.\r\n\r\n(b) Since this is a first-order reaction we can use the integrated form of the rate equation to calculate the time that it takes for a reactant to fall from an initial concentration [<em>A<\/em>]<sub>0<\/sub> to some final concentration [<em>A<\/em>]:\r\n\r\n[latex]\\text{ln}\\frac{{\\left[\\text{A}\\right]}_{0}}{\\left[\\text{A}\\right]}-kt[\/latex]\r\n\r\nAt 27 \u00b0C. <em>k<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup>.\r\n\r\nIn this case, the initial concentration is 0.150 <em>M<\/em> and the final concentration is 1.65 \u00d7 10<sup>-7<\/sup><em>M<\/em>. We can now solve for the time <em>t<\/em>:\r\n\r\n[latex]\\begin{array}{l}\\text{ln}\\frac{\\left[0.150\\text{M}\\right]}{\\left[1.65\\times {10}^{-7}\\text{M}\\right]}=\\left(2.1\\times {10}^{-11}{\\text{s}}^{-1}\\right)\\left(t\\right)\\\\ t=\\frac{13.720}{2.1\\times {10}^{-11}{\\text{s}}^{-1}}=6.5\\times {10}^{11}\\text{s}\\end{array}[\/latex]\r\n\r\nor 1.81 \u00d7 10<sup>8<\/sup> h or 7.6 \u00d7 10<sup>6<\/sup> day. (c) Assuming that the reaction is irreversible simplifies the calculation because we do not have to account for any reactant that, having been converted to product, returns to the original state.\r\n\r\n17.\u00a0The <em>A<\/em> atom has enough energy to react with BC; however, the different angles at which it bounces off of BC without reacting indicate that the orientation of the molecule is an important part of the reaction kinetics and determines whether a reaction will occur.\r\n\r\n[\/hidden-answer]\r\n\r\n<\/div>\r\n<h2>Glossary<\/h2>\r\n<strong>activated complex: <\/strong>(also, transition state) unstable combination of reactant species representing the highest energy state of a reaction system\r\n\r\n<strong>activation energy (<em>E<\/em><sub>a<\/sub>): <\/strong>energy necessary in order for a reaction to take place\r\n\r\n<strong>Arrhenius equation: <\/strong>mathematical relationship between the rate constant and the activation energy of a reaction\r\n\r\n<strong>collision theory: <\/strong>model that emphasizes the energy and orientation of molecular collisions to explain and predict reaction kinetics\r\n\r\n<strong>frequency factor (<em>A<\/em>): <\/strong>proportionality constant in the Arrhenius equation, related to the relative number of collisions having an orientation capable of leading to product formation","rendered":"<div class=\"textbox learning-objectives\">\n<h3>Learning Outcomes<\/h3>\n<ul>\n<li>Use the postulates of collision theory to explain the effects of physical state, temperature, and concentration on reaction rates<\/li>\n<li>Define the concepts of activation energy and transition state<\/li>\n<li>Use the Arrhenius equation in calculations relating rate constants to temperature<\/li>\n<\/ul>\n<\/div>\n<p>We should not be surprised that atoms, molecules, or ions must collide before they can react with each other. Atoms must be close together to form chemical bonds. This simple premise is the basis for a very powerful theory that explains many observations regarding chemical kinetics, including factors affecting reaction rates.<\/p>\n<p>Collision theory is based on the following postulates:<\/p>\n<ol>\n<li>The rate of a reaction is proportional to the rate of reactant collisions: [latex]\\text{reaction rate}\\propto \\dfrac{\\#\\text{collisions}}{\\text{time}}[\/latex]<\/li>\n<li>The reacting species must collide in an orientation that allows contact between the atoms that will become bonded together in the product.<\/li>\n<li>The collision must occur with adequate energy to permit mutual penetration of the reacting species\u2019 valence shells so that the electrons can rearrange and form new bonds (and new chemical species).<\/li>\n<\/ol>\n<p>We can see the importance of the two physical factors noted in postulates 2 and 3, the orientation and energy of collisions, when we consider the reaction of carbon monoxide with oxygen:<\/p>\n<p style=\"text-align: center;\">[latex]2\\text{CO(}g\\text{)}+{\\text{O}}_{2}\\text{(}g\\text{)}\\rightarrow 2{\\text{CO}}_{2}\\text{(}g\\text{)}[\/latex]<\/p>\n<p>Carbon monoxide is a pollutant produced by the combustion of hydrocarbon fuels. To reduce this pollutant, automobiles have catalytic converters that use a catalyst to carry out this reaction. It is also a side reaction of the combustion of gunpowder that results in muzzle flash for many firearms. If carbon monoxide and oxygen are present in sufficient quantity, the reaction is spontaneous at high temperature and pressure.<\/p>\n<p>The first step in the gas-phase reaction between carbon monoxide and oxygen is a collision between the two molecules:<\/p>\n<p style=\"text-align: center;\">[latex]\\text{CO(}g\\text{)}+{\\text{O}}_{2}\\text{(}g\\text{)}\\rightarrow{\\text{CO}}_{2}\\text{(}g\\text{)}+\\text{O(}g\\text{)}[\/latex]<\/p>\n<p>Although there are many different possible orientations the two molecules can have relative to each other, consider the two presented in Figure\u00a01. In the first case, the oxygen side of the carbon monoxide molecule collides with the oxygen molecule. In the second case, the carbon side of the carbon monoxide molecule collides with the oxygen molecule. The second case is clearly more likely to result in the formation of carbon dioxide, which has a central carbon atom bonded to two oxygen atoms (O=C=O). This is a rather simple example of how important the orientation of the collision is in terms of creating the desired product of the reaction.<\/p>\n<div style=\"width: 658px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/openstax.org\/resources\/144afbd51f5819746ec419c80245c903d296a16e\" alt=\"A diagram is shown that illustrates two possible collisions between C O and O subscript 2. In the diagram, oxygen atoms are represented as red spheres and carbon atoms are represented as black spheres. The diagram is divided into upper and lower halves by a horizontal dashed line. At the top left, a C O molecule is shown striking an O subscript 2 molecule such that the O atom from the C O molecule is at the point of collision. Surrounding this collision are a mix of molecules of C O, and O subscript 2 of varying sizes. At the top middle region of the figure, two separated O atoms are shown as red spheres with the label, \u201cOxygen to oxygen,\u201d beneath them. To the upper right, \u201cNo reaction\u201d is written. Similarly in the lower left of the diagram, a C O molecule is shown striking an O subscript 2 molecule such that the C atom from the C O molecule is at the point of collision. Surrounding this collision are a mix of molecules of C O, and O subscript 2 of varying sizes. At the lower middle region of the figure, a black sphere and a red spheres are shown with the label, \u201cCarbon to oxygen,\u201d beneath them. To the lower right, \u201cMore C O subscript 2 formation\u201d is written and three models of C O subscript 2 composed each of a single central black sphere and two red spheres in a linear arrangement are shown.\" width=\"648\" height=\"310\" \/><\/p>\n<p class=\"wp-caption-text\">Figure 1. Illustrated are two collisions that might take place between carbon monoxide and oxygen molecules. The orientation of the colliding molecules partially determines whether a reaction between the two molecules will occur.<\/p>\n<\/div>\n<p id=\"fs-idm58992896\">If the collision does take place with the correct orientation, there is still no guarantee that the reaction will proceed to form carbon dioxide. In addition to a proper orientation, the collision must also occur with sufficient energy to result in product formation. When reactant species collide with both proper orientation and adequate energy, they combine to form an unstable species called an\u00a0<span id=\"term545\" data-type=\"term\">activated complex<\/span>\u00a0or a\u00a0<span id=\"term546\" data-type=\"term\">transition state<\/span>. These species are very short lived and usually undetectable by most analytical instruments. In some cases, sophisticated spectral measurements have been used to observe transition states.<\/p>\n<p id=\"fs-idm207258608\">Collision theory explains why most reaction rates increase as concentrations increase. With an increase in the concentration of any reacting substance, the chances for collisions between molecules are increased because there are more molecules per unit of volume. More collisions mean a faster reaction rate, assuming the energy of the collisions is adequate.<\/p>\n<section id=\"fs-idm122484320\" data-depth=\"1\"><\/section>\n<h2>Activation Energy and the Arrhenius Equation<\/h2>\n<p>The minimum energy necessary to form a product during a collision between reactants is called the <strong>activation energy<\/strong> (<em>E<\/em><sub>a<\/sub>). The kinetic energy of reactant molecules plays an important role in a reaction because the energy necessary to form a product is provided by a collision of a reactant molecule with another reactant molecule. (In single-reactant reactions, activation energy may be provided by a collision of the reactant molecule with the wall of the reaction vessel or with molecules of an inert contaminant.) If the activation energy is much larger than the average kinetic energy of the molecules, the reaction will occur slowly: Only a few fast-moving molecules will have enough energy to react. If the activation energy is much smaller than the average kinetic energy of the molecules, the fraction of molecules possessing the necessary kinetic energy will be large; most collisions between molecules will result in reaction, and the reaction will occur rapidly.<\/p>\n<div style=\"width: 460px\" class=\"wp-caption alignright\"><img loading=\"lazy\" decoding=\"async\" class=\"\" src=\"https:\/\/openstax.org\/resources\/c6711e3ad1036181079d6a0018566d990f483003\" alt=\"A graph is shown with the label, \u201cExtent of reaction,\u201d bon the x-axis and the label, \u201cEnergy,\u201d on the y-axis. Above the x-axis, a portion of a curve is labeled \u201cA plus B.\u201d From the right end of this region, the concave down curve continues upward to reach a maximum near the height of the y-axis. The peak of this curve is labeled, \u201cTransition state.\u201d A double sided arrow extends from a dashed red horizontal line that originates at the y-axis at a common endpoint with the curve to the peak of the curve. This arrow is labeled \u201cE subscript a.\u201d A second horizontal red dashed line segment is drawn from the right end of the black curve left to the vertical axis at a level significantly lower than the initial \u201cA plus B\u201d labeled end of the curve. The end of the curve that is shared with this segment is labeled, \u201cC plus D.\u201d The curve, which was initially dashed, continues as a solid curve from the maximum to its endpoint at the right side of the diagram. A second double sided arrow is shown. This arrow extends between the two dashed horizontal lines and is labeled, \u201ccapital delta H.\u201d\" width=\"450\" height=\"355\" \/><\/p>\n<p class=\"wp-caption-text\">Figure 3. Reaction diagram for the exothermic reaction A + B \u2192 C + D<\/p>\n<\/div>\n<p>Figure\u00a03 shows the energy relationships for the general reaction of a molecule of <em>A<\/em> with a molecule of <em>B<\/em> to form molecules of <em>C<\/em> and <em>D<\/em>:\u00a0[latex]A+B\\rightarrow C+D[\/latex].<\/p>\n<p id=\"fs-idm92123120\">These\u00a0<span id=\"term548\" data-type=\"term\">reaction diagrams<\/span>\u00a0are widely used in chemical kinetics to illustrate various properties of the reaction of interest. Viewing the diagram from left to right, the system initially comprises reactants only,\u00a0<em data-effect=\"italics\">A<\/em>\u00a0+\u00a0<em data-effect=\"italics\">B<\/em>. Reactant molecules with sufficient energy can collide to form a high-energy activated complex or transition state. The unstable transition state can then subsequently decay to yield stable products,\u00a0<em data-effect=\"italics\">C<\/em>\u00a0+\u00a0<em data-effect=\"italics\">D<\/em>. The diagram depicts the reaction&#8217;s activation energy,\u00a0<em data-effect=\"italics\">E<sub>a<\/sub><\/em>, as the energy difference between the reactants and the transition state. Using a specific energy, the\u00a0<em data-effect=\"italics\">enthalpy<\/em>\u00a0(see chapter on thermochemistry), the enthalpy change of the reaction, \u0394<em data-effect=\"italics\">H<\/em>, is estimated as the energy difference between the reactants and products. In this case, the reaction is exothermic (\u0394<em data-effect=\"italics\">H<\/em>\u00a0&lt; 0) since it yields a decrease in system enthalpy.<\/p>\n<p>We can use the <strong>Arrhenius equation<\/strong> to relate the activation energy and the rate constant, <em>k<\/em>, of a given reaction:<\/p>\n<p style=\"text-align: center;\">[latex]k=A{e}^{-E_{\\text{a}}\\text{\/}RT}[\/latex]<\/p>\n<p>In this equation, <em>R<\/em> is the ideal gas constant, which has a value 8.314 J\/mol\/K, T is temperature on the Kelvin scale, <em>E<\/em><sub>a<\/sub> is the activation energy in joules per mole, <em>e<\/em> is the constant 2.7183, and <em>A<\/em> is a constant called the <strong>frequency factor<\/strong>, which is related to the frequency of collisions and the orientation of the reacting molecules.<\/p>\n<p id=\"fs-idm378964576\">Postulates of collision theory are nicely accommodated by the Arrhenius equation. The frequency factor,\u00a0<em data-effect=\"italics\">A<\/em>, reflects how well the reaction conditions favor properly oriented collisions between reactant molecules. An increased probability of effectively oriented collisions results in larger values for\u00a0<em data-effect=\"italics\">A<\/em>\u00a0and faster reaction rates.<\/p>\n<p id=\"fs-idm493145248\">The exponential term, [latex]{e}^{-E_{\\text{a}}\\text{\/}RT}[\/latex], describes the effect of activation energy on reaction rate. According to kinetic molecular theory (see the module on gases), the temperature of matter is a measure of the average kinetic energy of its constituent atoms or molecules. The distribution of energies among the molecules composing a sample of matter at any given temperature is described by the plot shown in Figure 4(a). Two shaded areas under the curve represent the numbers of molecules possessing adequate energy (<em data-effect=\"italics\">RT<\/em>) to overcome the activation barriers (<em data-effect=\"italics\">E<sub>a<\/sub><\/em>). A lower activation energy results in a greater fraction of adequately energized molecules and a faster reaction.<\/p>\n<p id=\"fs-idm494984112\">The exponential term also describes the effect of temperature on reaction rate. A higher temperature represents a correspondingly greater fraction of molecules possessing sufficient energy (<em data-effect=\"italics\">RT<\/em>) to overcome the activation barrier (<em data-effect=\"italics\">E<sub>a<\/sub><\/em>), as shown in Figure 4(b). This yields a greater value for the rate constant and a correspondingly faster reaction rate.<\/p>\n<div style=\"width: 749px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"\" src=\"https:\/\/openstax.org\/resources\/2f83ee59874e6d78a5a300039ab038fe34360ab1\" alt=\"Two graphs are shown each with an x-axis label of \u201cKinetic energy\u201d and a y-axis label of \u201cFraction of molecules.\u201d Each contains a positively skewed curve indicated in red that begins at the origin and approaches the x-axis at the right side of the graph. In a, a small area under the far right end of the curve is shaded orange. An arrow points down from above the curve to the left end of this region where the shading begins. This arrow is labeled, \u201cHigher activation energy, E subscript a.\u201d In b, the same red curve appears, and a second curve is drawn in black. It is also positively skewed, but reaches a lower maximum value and takes on a broadened appearance as compared to the curve in red. In this graph, the red curve is labeled, \u201cT subscript 1\u201d and the black curve is labeled, \u201cT subscript 2.\u201d In the open space at the upper right on the graph is the label, \u201cT subscript 1 less than T subscript 2.\u201d As with the first graph, the region under the curves at the far right is shaded orange and a downward arrow labeled \u201cE subscript a\u201d points to the left end of this shaded region.\" width=\"739\" height=\"285\" \/><\/p>\n<p class=\"wp-caption-text\">Figure 4. Molecular energy distributions showing numbers of molecules with energies exceeding (a) two different activation energies at a given temperature, and (b) a given activation energy at two different temperatures.<\/p>\n<\/div>\n<p>A convenient approach to determining <em>E<\/em><sub>a<\/sub> for a reaction involves the measurement of <em>k<\/em> at different temperatures and using of an alternate version of the Arrhenius equation that takes the form of linear equation:<\/p>\n<p style=\"text-align: center;\">[latex]\\begin{array}{ccc}\\hfill \\text{ln }k& =& \\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln }A\\hfill \\\\ \\hfill y& =& mx+b\\hfill \\end{array}[\/latex]<\/p>\n<p>A plot of ln(<em>k<\/em>) versus [latex]\\dfrac{1}{T}[\/latex] is linear with the slope [latex]\\dfrac{{-}{E}_{\\text{a}}}{R}[\/latex], from which <em>E<\/em><sub>a<\/sub> may be determined. The intercept gives the value of ln(<em>A<\/em>).<\/p>\n<div class=\"textbox examples\">\n<h3>Example 1:\u00a0Determination of <em>E<\/em><sub>a<\/sub><\/h3>\n<p>The variation of the rate constant with temperature for the decomposition of HI(<em>g<\/em>) to H<sub>2<\/sub>(<em>g<\/em>) and I<sub>2<\/sub>(<em>g<\/em>) is given below. What is the activation energy for the reaction?<\/p>\n<p style=\"text-align: center;\">[latex]\\text{2HI}\\left(g\\right)\\rightarrow{\\text{H}}_{2}\\left(g\\right)+{\\text{I}}_{2}\\left(g\\right)[\/latex]<\/p>\n<table id=\"fs-idm125968016\" class=\"medium unnumbered\" summary=\"This table has two columns and six rows. The first column is labeled, \u201cT ( K ),\u201d and the second is labeled, \u201ck ( L \/ mol \/ s ).\u201d Under the first column are the numbers: 555, 575, 645, 700, and 781. Under the second column are the numbers: 3.52 times ten to the negative 7; 1.22 times ten to the negative 6; 8.59 times ten to the negative 5; 1.16 times ten to the negative 3; and 3.95 times ten to the negative 2.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th><em>T<\/em> (K)<\/th>\n<th><em>k<\/em> (L\/mol\/s)<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>555<\/td>\n<td>3.52 \u00d7 10<sup>\u20137<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>575<\/td>\n<td>1.22 \u00d7 10<sup>\u20136<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>645<\/td>\n<td>8.59 \u00d7 10<sup>\u20135<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>700<\/td>\n<td>1.16 \u00d7 10<sup>\u20133<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>781<\/td>\n<td>3.95 \u00d7 10<sup>\u20132<\/sup><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q875102\">Show Solution<\/span><\/p>\n<div id=\"q875102\" class=\"hidden-answer\" style=\"display: none\">\n<p>Values of [latex]\\frac{1}{T}[\/latex] and ln <em>k<\/em> are:<\/p>\n<table id=\"fs-idp10812288\" class=\"medium unnumbered\" summary=\"This table has two columns and six rows. The first row is labeled, \u201c1 over T ( K superscript negative 1 ),\u201d and, \u201cl n k.\u201d Under the first column are the numbers: 1.80 times ten to the negative 3; 1.74 times ten to the negative 3; 1.55 times ten to the negative 3; 1.43 times ten to the negative 3; and 1.28 times ten to the negative 3. Under the second column are the numbers: negative 14.860, negative 13.617, negative 9.362, negative 6.759, and negative 3.231.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th>[latex]\\frac{1}{\\text{T}}\\left({\\text{K}}^{-1}\\right)[\/latex]<\/th>\n<th>ln <em>k<\/em><\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>1.80 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u201314.860<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>1.74 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u201313.617<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>1.55 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u20139.362<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>1.43 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u20136.759<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>1.28 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u20133.231<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>Figure\u00a05 is a graph of ln<em>k<\/em> versus [latex]\\frac{1}{T}.[\/latex]<\/p>\n<p id=\"fs-idm197951232\">In practice, the equation of the line (slope and\u00a0<em data-effect=\"italics\">y<\/em>-intercept) that best fits these plotted data points would be derived using a statistical process called regression. This is helpful for most experimental data because a perfect fit of each data point with the line is rarely encountered. For the data here, the fit is nearly perfect and the slope may be estimated using any two of the provided data pairs. Using the first and last data points permits estimation of the slope.<\/p>\n<div id=\"CNX_Chem_12_05_ArrhPlot\" class=\"os-figure\"><\/div>\n<div style=\"width: 410px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images-archive-read-only\/wp-content\/uploads\/sites\/887\/2015\/04\/23212313\/CNX_Chem_12_05_ArrhPlot1.jpg\" alt=\"A graph is shown with the label \u201c1 divided by T ( K superscript negative 1 )\u201d on the x-axis and \u201cl n k\u201d on the y-axis. The horizontal axis has markings at 1.4 times 10 superscript 3, 1.6 times 10 superscript 3, and 1.8 times 10 superscript 3. The y-axis shows markings at intervals of 2 from negative 14 through negative 2. A decreasing linear trend line is drawn through five points at the coordinates: (1.28 times 10 superscript negative 3, negative 3.231), (1.43 times 10 superscript negative 3, negative 6.759), (1.55 times 10 superscript negative 3, negative 9.362), (1.74 times 10 superscript negative 3, negative 13.617), and (1.80 times 10 superscript negative 3, negative 14.860). A vertical dashed line is drawn from a point just left of the data point nearest the y-axis. Similarly, a horizontal dashed line is draw from a point just above the data point closest to the x-axis. These dashed lines intersect to form a right triangle with a vertical leg label of \u201ccapital delta l n k\u201d and a horizontal leg label of \u201ccapital delta 1 divided by T.\u201d\" width=\"400\" height=\"379\" data-media-type=\"image\/jpeg\" \/><\/p>\n<p class=\"wp-caption-text\">Figure\u00a05. This graph shows the linear relationship between lnk and 1\/T for the reaction 2HI \u2192 H<sub>2<\/sub>\u00a0+ I<sub>2<\/sub> according to the Arrhenius equation.<\/p>\n<\/div>\n<p>The slope of this line is given by the following expression:<\/p>\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill \\text{Slope}& =\\dfrac{\\Delta\\left(\\mathrm{ln}k\\right)}{\\Delta\\left(\\frac{1}{T}\\right)}\\hfill \\\\ & =\\dfrac{\\left(-14.447\\right)-\\left(-2.593\\right)}{\\left(1.78\\times {10}^{-3}{\\text{K}}^{-1}\\right)-\\left(1.25\\times {10}^{-3}{\\text{K}}^{-1}\\right)}\\hfill \\\\ & =\\dfrac{-11.854}{0.53\\times {10}^{-3}{\\text{K}}^{-1}}=2.2\\times {10}^{4}\\text{K}\\hfill \\\\ & =-\\dfrac{{E}_{\\text{a}}}{R}\\hfill \\end{array}[\/latex]<\/p>\n<p>Thus:<\/p>\n<p style=\"padding-left: 30px;\"><em>E<\/em><sub>a<\/sub> = \u2013slope \u00d7 <em>R<\/em> = \u2013(\u20132.2 \u00d7 10<sup>4<\/sup> K \u00d7 8.314 J mol<sup>\u20131<\/sup> K<sup>\u20131<\/sup>)<\/p>\n<p style=\"padding-left: 30px;\"><em>E<\/em><sub>a<\/sub> = 1.8 \u00d7 10<sup>5<\/sup> J mol<sup>\u20131<\/sup><\/p>\n<p>In many situations, it is possible to obtain a reasonable estimate of the activation energy without going through the entire process of constructing the Arrhenius plot. The Arrhenius equation:<\/p>\n<p style=\"text-align: center;\">[latex]\\text{ln}k=\\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln}A[\/latex]<\/p>\n<p>can be rearranged as shown to give:<\/p>\n<p style=\"text-align: center;\">[latex]\\dfrac{\\Delta\\left(\\text{ln}k\\right)}{\\Delta\\left(\\frac{1}{T}\\right)}=-\\dfrac{{E}_{\\text{a}}}{R}[\/latex]<\/p>\n<p>or<\/p>\n<p style=\"text-align: center;\">[latex]\\text{ln}\\dfrac{{k}_{1}}{{k}_{2}}=\\dfrac{{E}_{\\text{a}}}{R}\\left(\\dfrac{1}{{T}_{2}}-\\dfrac{1}{{T}_{1}}\\right)[\/latex]<\/p>\n<p>This equation can be rearranged to give a one-step calculation to obtain an estimate for the activation energy:<\/p>\n<p style=\"text-align: center;\">[latex]{E}_{\\text{a}}=-R\\left(\\dfrac{\\text{ln}{k}_{2}-\\text{ln}{k}_{1}}{\\left(\\frac{1}{{T}_{2}}\\right)-\\left(\\frac{1}{{T}_{1}}\\right)}\\right)[\/latex]<\/p>\n<p>Using the experimental data presented below, we can simply select two data entries. For this example, we select the first entry and the last entry:<\/p>\n<table id=\"fs-idp62524656\" class=\"medium unnumbered\" summary=\"This table contains four columns and three rows. The first row is a header row, and it labels each column, \u201cT ( K ),\u201d \u201ck ( L \/ mol \/ s ),\u201d \u201c1 over T ( K superscript negative 1),\u201d and, \u201cl n k.\u201d Under the \u201cT ( K )\u201d column are the numbers 555 and 781. Under the \u201ck ( L \/ mol \/ s )\u201d column are the numbers 3.52 times ten to the negative 7 and 3.95 times ten to the negative 2. Under the \u201c1 over T ( K superscript negative 1)\u201d column are the numbers 1.80 times ten to the negative 3 and 1.28 times ten to the negative 3. Under the \u201cl n k\u201d column are the numbers negative 14.860 and negative 3.231.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th><em>T<\/em> (K)<\/th>\n<th><em>k<\/em> (L\/mol\/s)<\/th>\n<th>[latex]\\frac{1}{T}\\left({\\text{K}}^{-1}\\right)[\/latex]<\/th>\n<th>ln<em>k<\/em><\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>555<\/td>\n<td>3.52 \u00d7 10<sup>\u20137<\/sup><\/td>\n<td>1.80 \u00d7 10<sup>\u20133<\/sup><\/td>\n<td>\u201314.860<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>781<\/td>\n<td>3.95 \u00d7 10<sup>\u20132<\/sup><\/td>\n<td>1.28 \u00d7 10<sup>\u20133<\/sup><\/td>\n<td>\u20133.231<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>After calculating [latex]\\dfrac{1}{T}[\/latex] and ln <em>k<\/em>, we can substitute into the equation:<\/p>\n<p style=\"text-align: center;\">[latex]{E}_{\\text{a}}=-8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(\\dfrac{-3.231-\\left(-14.860\\right)}{1.28\\times {10}^{-3}{\\text{K}}^{-1}-1.80\\times {10}^{-3}{\\text{K}}^{-1}}\\right)[\/latex]<\/p>\n<p>and the result is <em>E<\/em><sub>a<\/sub> = [latex]1.8\\times{10}^{5}\\text{ J Mol}^{-1}[\/latex] or [latex]180\\text{ kJ\/mol}[\/latex].<\/p>\n<p>This method is very effective, especially when a limited number of temperature-dependent rate constants are available for the reaction of interest.<\/p>\n<\/div>\n<\/div>\n<h4>Check Your Learning<\/h4>\n<p>The rate constant for the rate of decomposition of N<sub>2<\/sub>O<sub>5<\/sub> to NO and O<sub>2<\/sub> in the gas phase is 1.66 L\/mol\/s at 650 K and 7.39 L\/mol\/s at 700 K:<\/p>\n<p style=\"text-align: center;\">[latex]{\\text{2N}}_{2}{\\text{O}}_{5}\\left(g\\right)\\rightarrow 4\\text{NO}\\left(g\\right)+{\\text{3O}}_{2}\\left(g\\right)[\/latex]<\/p>\n<p>Assuming the kinetics of this reaction are consistent with the Arrhenius equation, calculate the activation energy for this decomposition.<\/p>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q878948\">Show Solution<\/span><\/p>\n<div id=\"q878948\" class=\"hidden-answer\" style=\"display: none\">\n<p>[latex]1.1\\times{10}^{5}\\text{ J mol}^{-1}[\/latex] or 110 kJ\/mol<\/p><\/div>\n<\/div>\n<\/div>\n<div class=\"textbox key-takeaways\">\n<h3>Key Concepts and Summary<\/h3>\n<p>Chemical reactions require collisions between reactant species. These reactant collisions must be of proper orientation and sufficient energy in order to result in product formation. Collision theory provides a simple but effective explanation for the effect of many experimental parameters on reaction rates. The Arrhenius equation describes the relation between a reaction\u2019s rate constant and its activation energy, temperature, and dependence on collision orientation.<\/p>\n<h4>Key Equations<\/h4>\n<ul>\n<li>[latex]k=A{e}^{{-}{E}_{\\text{a}}\\text{\/}RT}[\/latex]<\/li>\n<li>[latex]\\text{ln}k=\\left(\\dfrac{{-}{E}_{\\text{a}}}{R}\\right)\\left(\\dfrac{1}{T}\\right)+\\text{ln}A[\/latex]<\/li>\n<li>[latex]\\text{ln}\\dfrac{{k}_{1}}{{k}_{2}}=\\dfrac{{E}_{\\text{a}}}{R}\\left(\\dfrac{1}{{T}_{2}}-\\dfrac{1}{{T}_{1}}\\right)[\/latex]<\/li>\n<\/ul>\n<\/div>\n<div class=\"textbox exercises\">\n<h3>Try It<\/h3>\n<ol>\n<li>Chemical reactions occur when reactants collide. What are two factors that may prevent a collision from producing a chemical reaction?<\/li>\n<li>When every collision between reactants leads to a reaction, what determines the rate at which the reaction occurs?<\/li>\n<li>What is the activation energy of a reaction, and how is this energy related to the activated complex of the reaction?<\/li>\n<li>Account for the relationship between the rate of a reaction and its activation energy.<\/li>\n<li>Describe how graphical methods can be used to determine the activation energy of a reaction from a series of data that includes the rate of reaction at varying temperatures.<\/li>\n<li>How does an increase in temperature affect rate of reaction? Explain this effect in terms of the collision theory of the reaction rate.<\/li>\n<li>The rate of a certain reaction doubles for every 10 \u00b0C rise in temperature.\n<ol style=\"list-style-type: lower-alpha;\">\n<li>How much faster does the reaction proceed at 45 \u00b0C than at 25 \u00b0C?<\/li>\n<li>How much faster does the reaction proceed at 95 \u00b0C than at 25 \u00b0C?<\/li>\n<\/ol>\n<\/li>\n<li>In an experiment, a sample of NaClO<sub>3<\/sub> was 90% decomposed in 48 min. Approximately how long would this decomposition have taken if the sample had been heated 20 \u00b0C higher?<\/li>\n<li>The rate constant at 325 \u00b0C for the decomposition reaction [latex]{\\text{C}}_{4}{\\text{H}}_{8}\\rightarrow{2\\text{C}}_{2}{\\text{H}}_{4}[\/latex] is 6.1 \u00d7 10<sup>\u22128<\/sup> s<sup>\u22121<\/sup>, and the activation energy is 261 kJ per mole of C<sub>4<\/sub>H<sub>8<\/sub>. Determine the frequency factor for the reaction.<\/li>\n<li>The rate constant for the decomposition of acetaldehyde, CH<sub>3<\/sub>CHO, to methane, CH<sub>4<\/sub>, and carbon monoxide, CO, in the gas phase is 1.1 \u00d7 10<sup>\u22122<\/sup> L\/mol\/s at 703 K and 4.95 L\/mol\/s at 865 K. Determine the activation energy for this decomposition.<\/li>\n<li>An elevated level of the enzyme alkaline phosphatase (ALP) in the serum is an indication of possible liver or bone disorder. The level of serum ALP is so low that it is very difficult to measure directly. However, ALP catalyzes a number of reactions, and its relative concentration can be determined by measuring the rate of one of these reactions under controlled conditions. One such reaction is the conversion of p-nitrophenyl phosphate (PNPP) to p-nitrophenoxide ion (PNP) and phosphate ion. Control of temperature during the test is very important; the rate of the reaction increases 1.47 times if the temperature changes from 30 \u00b0C to 37 \u00b0C. What is the activation energy for the ALP\u2013catalyzed conversion of PNPP to PNP and phosphate?<\/li>\n<li>In terms of collision theory, to which of the following is the rate of a chemical reaction proportional?\n<ol style=\"list-style-type: lower-alpha;\">\n<li>the change in free energy per second<\/li>\n<li>the change in temperature per second<\/li>\n<li>the number of collisions per second<\/li>\n<li>the number of product molecules<\/li>\n<\/ol>\n<\/li>\n<li>Hydrogen iodide, HI, decomposes in the gas phase to produce hydrogen, H<sub>2<\/sub>, and iodine, I<sub>2<\/sub>. The value of the rate constant, <em>k<\/em>, for the reaction was measured at several different temperatures and the data are shown here:<br \/>\n<table id=\"fs-idm124800496\" class=\"medium unnumbered\" summary=\"This table has two columns and five rows. The first column is labeled, \u201cTemperature ( K ),\u201d and the second column is labeled, \u201ck ( M superscript negative 1 s superscript negative 1 ).\u201d Under the first column are the numbers: 555, 575, 645, and 700. Under the second column are the numbers: 6.23 times ten to the negative 7; 2.42 times ten to the negative 6; 1.44 times ten to the negative 4; and 2.01 times ten to the negative 3.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th>Temperature (K)<\/th>\n<th><em>k<\/em> (<em>M<\/em><sup>\u22121<\/sup> s<sup>\u22121<\/sup>)<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>555<\/td>\n<td>6.23 \u00d7 10<sup>\u22127<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>575<\/td>\n<td>2.42 \u00d7 10<sup>\u22126<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>645<\/td>\n<td>1.44 \u00d7 10<sup>\u22124<\/sup><\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>700<\/td>\n<td>2.01 \u00d7 10<sup>\u22123<\/sup><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>What is the value of the activation energy (in kJ\/mol) for this reaction?<\/li>\n<li>The element Co exists in two oxidation states, Co(II) and Co(III), and the ions form many complexes. The rate at which one of the complexes of Co(III) was reduced by Fe(II) in water was measured. Determine the activation energy of the reaction from the following data:<br \/>\n<table id=\"fs-idm163198896\" class=\"medium unnumbered\" summary=\"This table contains two columns and three rows. The first row is a header row, and it labels each column, \u201cT ( K )\u201d and \u201ck ( s superscript negative 1 ).\u201d Under the first column are the numbers 293 and 298. Under the second column are the numbers 0.054 and 0.100.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th><em>T<\/em> (K)<\/th>\n<th><em>k<\/em> (s<sup>\u22121<\/sup>)<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>293<\/td>\n<td>0.054<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>298<\/td>\n<td>0.100<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<\/li>\n<li>The hydrolysis of the sugar sucrose to the sugars glucose and fructose, [latex]{\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}+{\\text{H}}_{2}\\text{O}\\rightarrow{\\text{C}}_{6}{\\text{H}}_{12}{\\text{O}}_{6}+{\\text{C}}_{6}{\\text{H}}_{12}{\\text{O}}_{6}[\/latex]follows a first-order rate equation for the disappearance of sucrose: [latex]\\text{Rate}=k\\left[{\\text{C}}_{12}{\\text{H}}_{22}{\\text{O}}_{11}\\right][\/latex] (The products of the reaction, glucose and fructose, have the same molecular formulas but differ in the arrangement of the atoms in their molecules.)\n<ol style=\"list-style-type: lower-alpha;\">\n<li>In neutral solution, <em>k<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup>\u00a0at 27 \u00b0C and 8.5 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup> at 37 \u00b0C. Determine the activation energy, the frequency factor, and the rate constant for this equation at 47 \u00b0C (assuming the kinetics remain consistent with the Arrhenius equation at this temperature).<\/li>\n<li>When a solution of sucrose with an initial concentration of 0.150 <em>M<\/em> reaches equilibrium, the concentration of sucrose is 1.65 \u00d7 10<sup>\u22127<\/sup><em>M<\/em>. How long will it take the solution to reach equilibrium at 27 \u00b0C in the absence of a catalyst? Because the concentration of sucrose at equilibrium is so low, assume that the reaction is irreversible.<\/li>\n<li>Why does assuming that the reaction is irreversible simplify the calculation in part (b)?<\/li>\n<\/ol>\n<\/li>\n<li>Use the <a href=\"https:\/\/phet.colorado.edu\/en\/simulation\/reactions-and-rates\" target=\"_blank\" rel=\"noopener\">PhET Reactions &amp; Rates interactive simulation<\/a> to simulate a system. On the \u201cSingle collision\u201d tab of the simulation applet, enable the \u201cEnergy view\u201d by clicking the \u201c+\u201d icon. Select the first [latex]A+BC\\rightarrow AB+C[\/latex] reaction (A is yellow, B is purple, and C is navy blue). Using the \u201cstraight shot\u201d default option, try launching the <em>A<\/em> atom with varying amounts of energy. What changes when the Total Energy line at launch is below the transition state of the Potential Energy line? Why? What happens when it is above the transition state? Why?<\/li>\n<li>Use the <a href=\"https:\/\/phet.colorado.edu\/en\/simulation\/reactions-and-rates\" target=\"_blank\" rel=\"noopener\">PhET Reactions &amp; Rates interactive simulation<\/a> to simulate a system. On the \u201cSingle collision\u201d tab of the simulation applet, enable the \u201cEnergy view\u201d by clicking the \u201c+\u201d icon. Select the first [latex]A+BC\\rightarrow AB+C[\/latex] reaction (A is yellow, B is purple, and C is navy blue). Using the \u201cangled shot\u201d option, try launching the <em>A<\/em> atom with varying angles, but with more Total energy than the transition state. What happens when the <em>A<\/em> atom hits the <em>BC<\/em> molecule from different directions? Why?<\/li>\n<\/ol>\n<div class=\"qa-wrapper\" style=\"display: block\"><span class=\"show-answer collapsed\" style=\"cursor: pointer\" data-target=\"q938149\">Show Selected Solutions<\/span><\/p>\n<div id=\"q938149\" class=\"hidden-answer\" style=\"display: none\">\n<p>1. The reactants either may be moving too slowly to have enough kinetic energy to exceed the activation energy for the reaction, or the orientation of the molecules when they collide may prevent the reaction from occurring.<\/p>\n<p>3. The activation energy is the minimum amount of energy necessary to form the activated complex in a reaction. It is usually expressed as the energy necessary to form one mole of activated complex.<\/p>\n<p>5.\u00a0After finding <em>k<\/em> at several different temperatures, a plot of ln<em>k<\/em> versus[latex]\\frac{{-}{E}_{\\text{a}}}{R}[\/latex] gives a straight line with the slope [latex]\\frac{1}{T},[\/latex] from which <em>E<\/em><sub>a<\/sub> may be determined.<\/p>\n<p>7.\u00a0(a) The rate doubles for each 10 \u00b0C rise in temperature; 45 \u00b0C is a 20 \u00b0C increases over 25 \u00b0C. Thus, the rate doubles two times, or 2<sup>2<\/sup> (rate at 25 \u00b0C) = 4-times faster.<\/p>\n<p>(b) 95 \u00b0C is a 70 \u00b0C increases over 25 \u00b0C. Thus the rate doubles seven times, or 2<sup>7<\/sup> (rate at 25 \u00b0C) = 128-times faster.<\/p>\n<p>9.\u00a0The rate constant <em>k<\/em> is related to the activation energy <em>E<\/em><sub>a<\/sub> by a relationship known as the Arrhenius equation. Its form is:<\/p>\n<p>[latex]k=A\\times {10}^{-\\left({E}_{\\text{a}}\\text{\/}2.303RT\\right)}=A\\times {e}^{-\\left({E}_{\\text{a}}\\text{\/}RT\\right)}[\/latex]<\/p>\n<p>where <em>A<\/em> is the frequency factor. Using the data provided, and converting kilojoules to joules:<\/p>\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill 6.1\\times {10}^{-8}{\\text{s}}^{-1}& =A\\times {10}^{-\\left[+261.000\\text{J}\\text{\/}2.303\\text{(}8.314\\text{J}{\\text{K}}^{-1}\\text{)}\\text{(}325+\\text{273)K}\\right]}\\\\ & =A\\times {10}^{-22.8}\\hfill \\end{array}[\/latex]<\/p>\n<p>[latex]A=\\frac{6.1\\times {10}^{-8}{\\text{s}}^{-1}}{1.58\\times {10}^{-23}}=3.9\\times {10}^{15}{\\text{s}}^{-1}[\/latex]<\/p>\n<p>11.\u00a0Note that [latex]{e}^{\\text{-}x}={10}^{\\text{-}x\\text{\/}2.303}.[\/latex] Changes in rate brought about by temperature changes are governed by the Arrhenius equation: [latex]k=A\\times {10}^{\\text{-}{E}_{\\text{a}}\\text{\/}2.303RT}.[\/latex] In this particular reaction, <em>k<\/em> increases by 1.47 as <em>T<\/em> changes from 30 \u00b0C (303 K). The Arrhenius equation may be solved for <em>A<\/em> under both sets of conditions and then <em>A<\/em> can be eliminated between the two equations. Eliminating <em>k<\/em> from both sides, taking logs, and rearranging gives:<\/p>\n<p style=\"text-align: center;\">[latex]\\begin{array}{l}\\frac{{-}{E}_{\\text{a}}}{2.303\\times 8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(310\\text{K}\\right)}=\\mathrm{log}1.47-\\frac{{E}_{\\text{a}}}{2.303\\times 8.314\\text{J}{\\text{mol}}^{-1}{\\text{K}}^{-1}\\left(303\\text{K}\\right)}\\\\ \\frac{{-}{E}_{\\text{a}}}{5935.6\\text{J}{\\text{mol}}^{-1}}=0.1673-\\frac{{E}_{\\text{a}}}{5801.6\\text{J}{\\text{mol}}^{-1}}\\\\ \\frac{{E}_{\\text{a}}}{5801.6}-\\frac{{E}_{\\text{a}}}{5935.6}=0.1673\\text{J}{\\text{mol}}^{-1}\\end{array}[\/latex]<\/p>\n<p><em>E<\/em><sub>a<\/sub>(1.72366 \u00d7 10<sup>\u22124<\/sup> &#8211; 1.68474 \u00d7 10<sup>\u22124<\/sup>) = 0.1673 J\/mol<\/p>\n<p>3.892 \u00d7 10<sup>\u22126<\/sup><em>E<\/em><sub>a<\/sub> = 0.1673 J\/mol<\/p>\n<p><em>E<\/em><sub>a<\/sub> = 42986 J\/mol = 43.0 kJ\/mol<\/p>\n<p>13. \u00a0E<sub>a<\/sub> may be determined from a plot of ln <em>k<\/em> against [latex]\\frac{1}{T}[\/latex] that gives a straight line whose slope is [latex]\\frac{{-}{E}_{\\text{a}}}{R}:[\/latex]<\/p>\n<table id=\"fs-idm126392640\" class=\"medium unnumbered\" summary=\"This table contains four columns and five rows. The first row is a header row, and it labels each column, \u201cT ( K ),\u201d \u201c1 over T times 10 to the third power,\u201d \u201ck ( M superscript negative 1 s superscript negative 1 ),\u201d and \u201cl n k.\u201d Under the \u201cT ( K )\u201d column are the numbers: 555, 575, 645, and 700. Under the \u201c1 over T times 10 to the third power\u201d column are the numbers 1.802, 1.739, 1.550, and 1.429. Under the \u201ck ( M superscript negative 1 s superscript negative 1 )\u201d column are the numbers: 6.23 times ten to the negative 7; 2.42 times ten to the negative 6; 1.44 times ten to the negative 4; 2.42 times ten to the negative 3. Under the \u201cl n k\u201d column are the numbers: negative 14.289, negative 12.932, negative 8.846, and negative 6.210.\" data-label=\"\">\n<thead>\n<tr valign=\"top\">\n<th><em>T<\/em> (K)<\/th>\n<th>[latex]\\frac{1}{T}\\times {10}^{3}[\/latex]<\/th>\n<th><em>k<\/em> (<em>M<\/em><sup>-1<\/sup> s<sup>-1<\/sup>)<\/th>\n<th>ln<em>k<\/em><\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr valign=\"top\">\n<td>555<\/td>\n<td>1.802<\/td>\n<td>6.23 \u00d7 10<sup>\u22127<\/sup><\/td>\n<td>\u221214.289<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>575<\/td>\n<td>1.739<\/td>\n<td>2.42 \u00d7 10<sup>\u22126<\/sup><\/td>\n<td>\u221212.932<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>645<\/td>\n<td>1.550<\/td>\n<td>1.44 \u00d7 10<sup>\u22124<\/sup><\/td>\n<td>\u22128.846<\/td>\n<\/tr>\n<tr valign=\"top\">\n<td>700<\/td>\n<td>1.429<\/td>\n<td>2.42 \u00d7 10<sup>\u22123<\/sup><\/td>\n<td>\u22126.210<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p>A plot of this data shows a straight line. Two points marked by an X are picked for convenience of reading and are used to determine the slope of the line:<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images-archive-read-only\/wp-content\/uploads\/sites\/887\/2015\/04\/23212314\/CNX_Chem_12_05_Slope_img1.jpg\" alt=\"A graph is shown with the label, \u201c1 divided by T times 10 superscript 3 ( K superscript negative 1 ),\u201d on the x-axis and, \u201cln k,\u201d on the y-axis. The x-axis has markings beginning at 1.4, increasing by 0.10 up to and including 1.80. The y-axis shows markings of negative 14 through negative 6 at intervals of 1. A decreasing linear trend line is drawn through four points represented as black dots at the coordinates: (1.429, negative 6.210), (1.550, negative 8.846), (1.739, negative 12.932), and (1.802, negative 14.289). A vertical dashed line is drawn from the point (negative 6.75, 1.45) which is just right of the data point nearest the y-axis. Similarly, a horizontal dashed line is draw from the point (negative 14.75, 1.825) which is just below the data point closest to the x-axis. These dashed lines intersect to form a right triangle with a vertical leg label of \u201ccapital delta l n k\u201d and a horizontal leg label of \u201ccapital delta 1 divided by T.\u201d\" width=\"350\" height=\"491\" data-media-type=\"image\/jpeg\" \/><\/p>\n<p>[latex]\\begin{array}{lll}\\hfill \\text{slope}& =& \\frac{-14.750-\\left(-6.750\\right)}{1.825\\times {10}^{-3}-1.450\\times {10}^{-3}}=\\frac{-8.000}{3.75\\times {10}^{-4}}=-2.13\\times {10}^{4}\\hfill \\\\ \\hfill \\frac{{-}{E}_{\\text{a}}}{R}& =& -2.13\\times {10}^{4}\\hfill \\end{array}[\/latex]<\/p>\n<p><em>E<\/em><sub>a<\/sub> = \u22122.13 \u00d7 10<sup>4<\/sup> \u00d7 8.314 J\/mol = 177 kJ\/mol<\/p>\n<p>15. \u00a0(a) The text demonstrates that the value of <em>E<\/em><sub>a<\/sub> may be determined from a plot of log<em>k<\/em> against [latex]\\frac{1}{T}[\/latex] that gives a straight line whose slope is [latex]\\frac{{-}{E}_{\\text{a}}}{2.303R}.[\/latex] This relationship is based on the equation [latex]\\text{ln}k=\\text{ln}A-\\frac{{E}_{\\text{a}}}{RT}[\/latex] or [latex]\\text{log}k=\\text{log}A-\\frac{{E}_{\\text{a}}}{2.303RT}[\/latex] where [latex]\\text{In}k=2.303\\text{log}k.[\/latex] Only two data points are given, and these must determine a straight line when log<em>k<\/em> is plotted against 1\/<em>T<\/em>. The values needed are:<\/p>\n<p><em>k<\/em><sub>1<\/sub> = 2.1 \u00d7 10<sup>\u221211<\/sup><\/p>\n<p>log <em>k<\/em><sub>1<\/sub> = \u221210.6778<\/p>\n<p><em>k<\/em><sub>2<\/sub> = 8.5 \u00d7 10<sup>-11<\/sup><\/p>\n<p>log <em>k<\/em><sub>2<\/sub> = -10.0706<\/p>\n<p><em>T<\/em><sub>1<\/sub> = 27 \u00b0C = 300 K<\/p>\n<p>[latex]\\frac{1}{{T}_{1}}[\/latex] = 3.3333 \u00d7 10<sup>-3<\/sup><\/p>\n<p><em>T<\/em><sub>2<\/sub> = 37 \u00b0C = 310 K<\/p>\n<p>[latex]\\frac{1}{{T}_{2}}[\/latex] = 3.2258 \u00d7 10<sup>-3<\/sup><\/p>\n<p>The slope of the line determined by these points is given by:<\/p>\n<p style=\"text-align: center;\">[latex]\\begin{array}{cc}\\hfill \\text{Slope}& =\\frac{\\Delta\\left(\\text{log}k\\right)}{\\Delta\\frac{1}{T}}=\\frac{\\left(-10.0706\\right)-\\left(-10.6778\\right)}{\\left(3.2258\\times {10}^{-3}\\right)-\\left(3.3333\\times {10}^{-3}\\right)}\\hfill \\\\ & =\\frac{0.6072}{-0.1075\\times {10}^{-3}}=-5648\\hfill \\end{array}[\/latex]<\/p>\n<p><em>E<\/em><sub>a<\/sub> = 2.303(8.314 J\/mol)(\u22125648) = 108,100 J = 108 kJ<\/p>\n<p>Whenever differences of very small numbers are taken, such as the reciprocals of <em>T<\/em> provided, an inherent problem occurs. To have accurate differences, a larger number of significant figures than justified by the data must be used. Thus five figures were used to obtain the value <em>E<\/em><sub>a<\/sub> = 108 kJ. This difficulty may be alleviated by the following approach.<\/p>\n<p>For only two data points, the Arrhenius equation [latex]k=A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}[\/latex] may be used in an equally accurate, analytical solution for <em>E<\/em><sub>a<\/sub>. This application is possible because the value of <em>A<\/em> will be the same throughout the course of the reaction. Once the value of <em>E<\/em><sub>a<\/sub> is determined, the value of <em>A<\/em> may be determined from either Equation (1) or (2). Then <em>k<\/em> at 47 \u00b0C may be determined using the value of <em>E<\/em><sub>a<\/sub> and <em>A<\/em> so determined. The procedure is as follows:<\/p>\n<p>[latex]\\begin{array}{cccc}\\hfill k& =& A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}\\hfill & \\\\ \\hfill 2.1\\times {10}^{-11}{\\text{s}}^{-1}& =& A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}\\hfill & \\text{(equation 1)}\\hfill \\\\ \\hfill 8.5\\times {10}^{-11}{\\text{s}}^{-1}& =& A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}\\hfill & \\text{(equation 2)}\\hfill \\end{array}[\/latex]<\/p>\n<p>Equating the values of <em>A<\/em> as solved from equations (1) and (2):<\/p>\n<p>[latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}=8.5\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}2.303\\left(8.314\\text{J}{\\text{K}}^{-1}\\right)\\text{(300 K)}}[\/latex] or [latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}5744}=8.5\\times {10}^{-11}{\\text{s}}^{-1}\\times {10}^{+{E}_{\\text{a}}\\text{\/}5936}.[\/latex]<\/p>\n<p>Taking common logs of both sides gives:<\/p>\n<p>[latex]\\begin{array}{l}\\\\ \\\\ \\left(\\mathrm{log}2.1\\times {10}^{-11}\\right)+\\frac{{E}_{\\text{a}}}{5744}=\\left(\\mathrm{log}8.5\\times {10}^{-11}\\right)+\\frac{{E}_{\\text{a}}}{5936}-10.68+\\frac{{E}_{\\text{a}}}{5744}=-10.07+\\frac{{E}_{\\text{a}}}{5936}\\\\ {E}_{\\text{a}}\\left(\\frac{1}{5744}-\\frac{1}{5936}\\right)=-10.07+10.68\\\\ {E}_{\\text{a}}\\left(1.741\\times {10}^{-4}-1.685\\times {10}^{-4}\\right)=0.61\\\\ {E}_{\\text{a}}=\\frac{0.61}{0.056\\times {10}^{-4}}=109\\text{kJ}\\end{array}[\/latex]<\/p>\n<p>The value of <em>A<\/em> may be found from either equation (1) or (2). Using equation (1):<\/p>\n<p>[latex]2.1\\times {10}^{-11}{\\text{s}}^{-1}=A\\times {10}^{\\text{-109,000\/2.303(8.314)(300)}}=A\\times {10}^{-18.98}[\/latex]<\/p>\n<p><em>A<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup> \u00d7 10<sup>+18.91<\/sup> = 2.1 \u00d7 10<sup>\u221211<\/sup>(9.55 \u00d7 10<sup>18<\/sup> s<sup>\u22121<\/sup>) = 2.0 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup><\/p>\n<p>The value of <em>k<\/em> at 47\u00b0C may be determined from the Arrhenius equation now that the values of <em>E<\/em><sub>a<\/sub> and <em>A<\/em> have been calculated:<\/p>\n<p>[latex]\\begin{array}{cc}\\hfill k& =A\\times {10}^{{-}{E}_{\\text{a}}\\text{\/}2.303RT}\\hfill \\\\ & =2.0\\times {10}^{8}{\\text{s}}^{-1}\\times {10}^{\\text{-109,000 J\/2.303(8.314 J}{\\text{K}}^{-1}\\text{)}\\text{(320 K)}}\\hfill \\end{array}[\/latex]<\/p>\n<p>= 2.0 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup> \u00d7 10<sup>\u221217.79<\/sup> = 2.0 \u00d7 10<sup>8<\/sup>(1.62 \u00d7 10<sup>\u221218<\/sup>) = 3.2 \u00d7 10<sup>\u221210<\/sup> s<sup>\u22121<\/sup><\/p>\n<p>Using the earlier value of <em>E<\/em><sub>a<\/sub> = 108 kJ, the calculated value of <em>A<\/em> is 1.3 \u00d7 10<sup>8<\/sup> s<sup>\u22121<\/sup>, and <em>k<\/em> = 3.1 \u00d7 10<sup>\u221210<\/sup> s<sup>\u22121<\/sup>. Either answer is acceptable.<\/p>\n<p>(b) Since this is a first-order reaction we can use the integrated form of the rate equation to calculate the time that it takes for a reactant to fall from an initial concentration [<em>A<\/em>]<sub>0<\/sub> to some final concentration [<em>A<\/em>]:<\/p>\n<p>[latex]\\text{ln}\\frac{{\\left[\\text{A}\\right]}_{0}}{\\left[\\text{A}\\right]}-kt[\/latex]<\/p>\n<p>At 27 \u00b0C. <em>k<\/em> = 2.1 \u00d7 10<sup>\u221211<\/sup> s<sup>\u22121<\/sup>.<\/p>\n<p>In this case, the initial concentration is 0.150 <em>M<\/em> and the final concentration is 1.65 \u00d7 10<sup>-7<\/sup><em>M<\/em>. We can now solve for the time <em>t<\/em>:<\/p>\n<p>[latex]\\begin{array}{l}\\text{ln}\\frac{\\left[0.150\\text{M}\\right]}{\\left[1.65\\times {10}^{-7}\\text{M}\\right]}=\\left(2.1\\times {10}^{-11}{\\text{s}}^{-1}\\right)\\left(t\\right)\\\\ t=\\frac{13.720}{2.1\\times {10}^{-11}{\\text{s}}^{-1}}=6.5\\times {10}^{11}\\text{s}\\end{array}[\/latex]<\/p>\n<p>or 1.81 \u00d7 10<sup>8<\/sup> h or 7.6 \u00d7 10<sup>6<\/sup> day. (c) Assuming that the reaction is irreversible simplifies the calculation because we do not have to account for any reactant that, having been converted to product, returns to the original state.<\/p>\n<p>17.\u00a0The <em>A<\/em> atom has enough energy to react with BC; however, the different angles at which it bounces off of BC without reacting indicate that the orientation of the molecule is an important part of the reaction kinetics and determines whether a reaction will occur.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<h2>Glossary<\/h2>\n<p><strong>activated complex: <\/strong>(also, transition state) unstable combination of reactant species representing the highest energy state of a reaction system<\/p>\n<p><strong>activation energy (<em>E<\/em><sub>a<\/sub>): <\/strong>energy necessary in order for a reaction to take place<\/p>\n<p><strong>Arrhenius equation: <\/strong>mathematical relationship between the rate constant and the activation energy of a reaction<\/p>\n<p><strong>collision theory: <\/strong>model that emphasizes the energy and orientation of molecular collisions to explain and predict reaction kinetics<\/p>\n<p><strong>frequency factor (<em>A<\/em>): <\/strong>proportionality constant in the Arrhenius equation, related to the relative number of collisions having an orientation capable of leading to product formation<\/p>\n\n\t\t\t <section class=\"citations-section\" role=\"contentinfo\">\n\t\t\t <h3>Candela Citations<\/h3>\n\t\t\t\t\t <div>\n\t\t\t\t\t\t <div id=\"citation-list-2222\">\n\t\t\t\t\t\t\t <div class=\"licensing\"><div class=\"license-attribution-dropdown-subheading\">CC licensed content, Shared previously<\/div><ul class=\"citation-list\"><li>Chemistry 2e. <strong>Provided by<\/strong>: OpenStax. <strong>Located at<\/strong>: <a target=\"_blank\" href=\"https:\/\/openstax.org\/\">https:\/\/openstax.org\/<\/a>. <strong>License<\/strong>: <em><a target=\"_blank\" rel=\"license\" href=\"https:\/\/creativecommons.org\/licenses\/by\/4.0\/\">CC BY: Attribution<\/a><\/em>. <strong>License Terms<\/strong>: Access for free at https:\/\/openstax.org\/books\/chemistry-2e\/pages\/1-introduction<\/li><\/ul><\/div>\n\t\t\t\t\t\t <\/div>\n\t\t\t\t\t <\/div>\n\t\t\t <\/section>","protected":false},"author":17,"menu_order":6,"template":"","meta":{"_candela_citation":"[{\"type\":\"cc\",\"description\":\"Chemistry 2e\",\"author\":\"\",\"organization\":\"OpenStax\",\"url\":\"https:\/\/openstax.org\/\",\"project\":\"\",\"license\":\"cc-by\",\"license_terms\":\"Access for free at https:\/\/openstax.org\/books\/chemistry-2e\/pages\/1-introduction\"}]","CANDELA_OUTCOMES_GUID":"","pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":""},"chapter-type":[],"contributor":[],"license":[],"class_list":["post-2222","chapter","type-chapter","status-publish","hentry"],"part":2992,"_links":{"self":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapters\/2222","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/wp\/v2\/users\/17"}],"version-history":[{"count":24,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapters\/2222\/revisions"}],"predecessor-version":[{"id":7654,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapters\/2222\/revisions\/7654"}],"part":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/parts\/2992"}],"metadata":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapters\/2222\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/wp\/v2\/media?parent=2222"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/pressbooks\/v2\/chapter-type?post=2222"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/wp\/v2\/contributor?post=2222"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/chemistryformajors\/wp-json\/wp\/v2\/license?post=2222"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}