{"id":939,"date":"2018-11-28T16:01:47","date_gmt":"2018-11-28T16:01:47","guid":{"rendered":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/?post_type=chapter&#038;p=939"},"modified":"2019-01-08T14:55:09","modified_gmt":"2019-01-08T14:55:09","slug":"18-5-radical-polymerization-of-alkenes-polymers","status":"publish","type":"chapter","link":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/chapter\/18-5-radical-polymerization-of-alkenes-polymers\/","title":{"raw":"18.5. Radical Polymerization of Alkenes, Polymers","rendered":"18.5. Radical Polymerization of Alkenes, Polymers"},"content":{"raw":"<header class=\"elm-header\">\r\n<div class=\"elm-header-custom\">\r\n<div class=\"mt-container-secondary\"><span style=\"font-size: 1rem;text-align: initial\">Prior to the early 1920's, chemists doubted the existence of molecules having molecular weights greater than a few thousand. This limiting view was challenged by <\/span><a class=\"external\" style=\"font-size: 1em;text-align: initial\" href=\"http:\/\/www.chemistry.msu.edu\/Portraits\/PortraitsHH_Detail.asp?HH_LName=Staudinger\" target=\"_blank\" rel=\"external nofollow noopener\">Hermann Staudinger<\/a><span style=\"font-size: 1em;text-align: initial\">, a German chemist with experience in studying natural compounds such as rubber and cellulose. In contrast to the prevailing rationalization of these substances as aggregates of small molecules, Staudinger proposed they were made up of <\/span><strong style=\"font-size: 1em;text-align: initial\">macromolecules<\/strong><span style=\"font-size: 1em;text-align: initial\"> composed of 10,000 or more atoms. He formulated a <\/span><strong style=\"font-size: 1em;text-align: initial\">polymeric<\/strong><span style=\"font-size: 1em;text-align: initial\"> structure for <\/span><a class=\"external\" style=\"font-size: 1em;text-align: initial\" href=\"http:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/lipids.htm#terp2\" target=\"_blank\" rel=\"external nofollow noopener\">rubber<\/a><span style=\"font-size: 1em;text-align: initial\">, based on a repeating isoprene unit (referred to as a monomer). For his contributions to chemistry, Staudinger received the 1953 Nobel Prize. The terms <\/span><strong style=\"font-size: 1em;text-align: initial\">polymer<\/strong><span style=\"font-size: 1em;text-align: initial\"> and <\/span><strong style=\"font-size: 1em;text-align: initial\">monomer<\/strong><span style=\"font-size: 1em;text-align: initial\"> were derived from the Greek roots <\/span><u style=\"font-size: 1em;text-align: initial\">poly<\/u><span style=\"font-size: 1em;text-align: initial\"> (many), <\/span><u style=\"font-size: 1em;text-align: initial\">mono<\/u><span style=\"font-size: 1em;text-align: initial\"> (one) and <\/span><u style=\"font-size: 1em;text-align: initial\">meros<\/u><span style=\"font-size: 1em;text-align: initial\"> (part).<\/span><\/div>\r\n<\/div>\r\n<\/header><article id=\"elm-main-content\" class=\"elm-content-container\"><section class=\"mt-content-container\">Recognition that polymeric macromolecules make up many important natural materials was followed by the creation of synthetic analogs having a variety of properties. Indeed, applications of these materials as fibers, flexible films, adhesives, resistant paints and tough but light solids have transformed modern society. Some important examples of these substances are discussed in the following sections.There are two general types of polymerization reactions: addition polymerization and condensation polymerization. In <span class=\"margin_term\"><a class=\"glossterm\">addition polymerization<\/a><\/span>, the monomers add to one another in such a way that the polymer contains all the atoms of the starting monomers. Ethylene molecules are joined together in long chains.<\/section><\/article><section><\/section><section>Strictly speaking, this chapter is on radical reactions, which include most addition polymerization processes.\u00a0 However, in order to cover the topic of polymers properly, we are including a brief section on condensation polymerization (usually based on substitution chemistry) here as well.<\/section><article id=\"elm-main-content\" class=\"elm-content-container\"><section class=\"mt-content-container\">\r\n<div id=\"note\">\r\n<div class=\"textbox\">\r\n<p class=\"boxtitle\">Note<\/p>\r\n<p class=\"para\">Many natural materials\u2014such as proteins, cellulose and starch, and complex silicate minerals\u2014are polymers. Artificial fibers, films, plastics, semisolid resins, and rubbers are also polymers. More than half the compounds produced by the chemical industry are synthetic polymers.<\/p>\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"section_1\" class=\"mt-section\">\r\n<h3 class=\"editable\">Chain-Reaction (Addition) Polymerization<\/h3>\r\nThe polymerization can be represented by the reaction of a few monomer units:\r\n<div class=\"informalfigure large block\"><img class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155923\/polymerization.jpg\" alt=\"polymerization.jpg\" width=\"442\" height=\"173\" \/><\/div>\r\n<p class=\"para editable block\">The bond lines extending at the ends in the formula of the product indicate that the structure extends for many units in each direction. Notice that all the atoms\u2014two carbon atoms and four hydrogen atoms\u2014of each monomer molecule are incorporated into the polymer structure. Because displays such as the one above are cumbersome, the polymerization is often abbreviated as follows:<\/p>\r\n<p style=\"text-align: center\"><em>n<\/em>CH<sub>2<\/sub>=CH<sub>2<\/sub> \u2192\u00a0\u00a0\u00a0 [\u00a0 CH<sub>2<\/sub>CH<sub>2<\/sub>\u00a0 ] \u00a0 <em><sub>n<\/sub><\/em><\/p>\r\nDuring the polymeriation of ethene, thousands of ethene molecules join together to make poly(ethene) - commonly called polythene. The reaction is done at high pressures in the presence of a trace of oxygen as an initiator.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155928\/polymeq1.gif\" alt=\"\" width=\"229px\" height=\"21px\" \/>\r\n<p class=\"para editable block\">Some common addition polymers are listed in the Table below . Note that all the monomers have carbon-to-carbon double bonds. Many polymers are mundane (e.g., plastic bags, food wrap, toys, and tableware), but there are also polymers that conduct electricity, have amazing adhesive properties, or are stronger than steel but much lighter in weight.<\/p>\r\n\r\n<table style=\"margin: auto;border-spacing: 0px;width: 665px\" border=\"1\" cellpadding=\"0\"><caption><em><strong>Table <\/strong><\/em> <em><strong>:<\/strong> Some Addition Polymers<\/em><\/caption>\r\n<thead>\r\n<tr>\r\n<th style=\"width: 88px\">Monomer<\/th>\r\n<th style=\"width: 175px\">Polymer<\/th>\r\n<th style=\"width: 143px\">Polymer Name<\/th>\r\n<th style=\"width: 259px\">Some Uses<\/th>\r\n<\/tr>\r\n<\/thead>\r\n<tbody>\r\n<tr>\r\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CH<sub class=\"subscript\">2<\/sub><\/td>\r\n<td style=\"width: 175px\">~CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>~<\/td>\r\n<td style=\"width: 143px\">polyethylene<\/td>\r\n<td style=\"width: 259px\">plastic bags, bottles, toys, electrical insulation<\/td>\r\n<\/tr>\r\n<tr>\r\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CHCH<sub class=\"subscript\">3<\/sub><\/td>\r\n<td style=\"width: 175px\"><img class=\"internal default\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155930\/polypropylene.jpg\" alt=\"polypropylene.jpg\" width=\"200px\" height=\"93px\" \/><\/td>\r\n<td style=\"width: 143px\">polypropylene<\/td>\r\n<td style=\"width: 259px\">carpeting, bottles, luggage, exercise clothing<\/td>\r\n<\/tr>\r\n<tr>\r\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CHCl<\/td>\r\n<td style=\"width: 175px\"><img class=\"internal default\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155933\/polyvinyl_chloride.jpg\" alt=\"polyvinyl chloride.jpg\" width=\"200px\" height=\"78px\" \/><\/td>\r\n<td style=\"width: 143px\">polyvinyl chloride<\/td>\r\n<td style=\"width: 259px\">bags for intravenous solutions, pipes, tubing, floor coverings<\/td>\r\n<\/tr>\r\n<tr>\r\n<td style=\"width: 88px\">CF<sub class=\"subscript\">2<\/sub>=CF<sub class=\"subscript\">2<\/sub><\/td>\r\n<td style=\"width: 175px\">~CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>~<\/td>\r\n<td style=\"width: 143px\">polytetrafluoroethylene<\/td>\r\n<td style=\"width: 259px\">nonstick coatings, electrical insulation<\/td>\r\n<\/tr>\r\n<\/tbody>\r\n<\/table>\r\n<div id=\"section_2\" class=\"mt-section\">\r\n\r\n&nbsp;\r\n<h4 class=\"editable\">Step 1: Chain Initiation<\/h4>\r\nThe oxygen reacts with some of the ethene to give an organic peroxide. Organic peroxides are very reactive molecules containing oxygen-oxygen single bonds which are quite weak and which break easily to give free radicals. You can short-cut the process by adding other organic peroxides directly to the ethene instead of using oxygen if you want to. The type of the free radicals that start the reaction off vary depending on their source. For simplicity we give them a general formula: $$Ra ^{\\bullet}$$\r\n\r\n<\/div>\r\n<div id=\"section_3\" class=\"mt-section\">\r\n<h4 class=\"editable\">Step 2: Chain Propagation<\/h4>\r\nIn an ethene molecule, CH<sub>2<\/sub>=CH<sub>2<\/sub>, the two pairs of electrons which make up the double bond aren't the same. One pair is held securely on the line between the two carbon nuclei in a sigma bond. The other pair is more loosely held in an orbital above and below the plane of the molecule in a $$\\pi$$ bond.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155936\/ethenebonds.gif\" alt=\"\" width=\"133px\" height=\"117px\" \/>\r\n<div>\r\n<div class=\"textbox\">\r\n<p class=\"boxtitle\">Note<\/p>\r\nIt would be helpful - but not essential - if you read about the <a class=\"external\" href=\"http:\/\/www.chemguide.co.uk\/basicorg\/bonding\/ethene.html#top\" target=\"_blank\" rel=\"external nofollow noopener\">structure of ethene<\/a> before you went on. If the diagram above is unfamiliar to you, then you certainly ought to read this background material.\r\n\r\n<\/div>\r\n<\/div>\r\nImagine what happens if a free radical approaches the $$\\pi$$ bond in ethene.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155938\/ethenera.gif\" alt=\"\" width=\"339px\" height=\"94px\" \/>\r\n<div>\r\n<div class=\"textbox\">\r\n<p class=\"boxtitle\">Note<\/p>\r\nDon't worry that we've gone back to a simpler diagram. As long as you realise that the pair of electrons shown between the two carbon atoms is in a $$\\pi$$ bond - and therefore vulnerable - that's all that really matters for this mechanism.\r\n\r\n<\/div>\r\n<\/div>\r\nThe sigma bond between the carbon atoms isn't affected by any of this. The free radical, Ra<img style=\"text-align: absmiddle\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155941\/electron.gif\" alt=\"image\" width=\"7\" height=\"7\" \/>, uses one of the electrons in the $$\\pi$$ bond to help to form a new bond between itself and the left hand carbon atom - a radical addition step. The other electron returns to the right hand carbon. You can show this using curved arrow notation (with single-headed \"fish-hook\" arrows) if you want to:\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155943\/polymfh.gif\" alt=\"\" width=\"337px\" height=\"41px\" \/>\r\n<div>\r\n<p class=\"boxtitle\"><span style=\"font-size: 1rem;text-align: initial\">This is energetically worth doing because the new bond between the radical and the carbon is stronger than the $$\\pi$$ bond which is broken. You would get more energy out when the new bond is made than was used to break the old one. The more energy that is given out, the more stable the system becomes. What we've now got is a bigger free radical - lengthened by CH<\/span><sub style=\"text-align: initial\">2<\/sub><span style=\"font-size: 1rem;text-align: initial\">CH<\/span><sub style=\"text-align: initial\">2<\/sub><span style=\"font-size: 1rem;text-align: initial\">. That can react with another ethene molecule in the same way:<\/span><\/p>\r\n\r\n<\/div>\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155945\/polymeq3.gif\" alt=\"\" width=\"346px\" height=\"19px\" \/>\r\n\r\nSo now the radical is even bigger. That can react with another ethene - and so on and so on. The polymer chain gets longer and longer.\r\n\r\n<\/div>\r\n<div id=\"section_4\" class=\"mt-section\">\r\n<h4 class=\"editable\">Step 3: Chain Termination<\/h4>\r\nThe chain does not, however, grow indefinitely. Sooner or later two free radicals will collide together.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155948\/polymeq4.gif\" alt=\"\" width=\"352px\" height=\"19px\" \/>\r\n\r\nThat immediately stops the growth of two chains and produces one of the final molecules in the poly(ethene). It is important to realise that the poly(ethene) is going to be a mixture of molecules of different sizes, made in this sort of random way. Because chain termination is a random process, poly(ethene) will be made up of chains of different lengths.\r\n\r\n<\/div>\r\n<\/div>\r\n<div id=\"section_5\" class=\"mt-section\">\r\n<h3 class=\"editable\">Step-Reaction (Condensation) Polymerization<\/h3>\r\nA large number of important and useful polymeric materials are not formed by chain-growth processes involving reactive species such as radicals, but proceed instead by conventional functional group transformations of polyfunctional reactants. These polymerizations often (but not always) occur with loss of a small byproduct, such as water, and generally (but not always) combine two different components in an alternating structure. The polyester Dacron and the polyamide Nylon 66, shown here, are two examples of synthetic condensation polymers, also known as step-growth polymers. In contrast to chain-growth polymers, most of which grow by carbon-carbon bond formation, step-growth polymers generally grow by carbon-heteroatom bond formation (C-O &amp; C-N in Dacron &amp; Nylon respectively). Although polymers of this kind might be considered to be alternating copolymers, the repeating monomeric unit is usually defined as a combined moiety.\r\n\r\nExamples of naturally occurring condensation polymers are cellulose, the polypeptide chains of proteins, and poly(\u03b2-hydroxybutyric acid), a polyester synthesized in large quantity by certain soil and water bacteria. Formulas for these will be displayed below by clicking on the diagram.\r\n\r\nMany of the reactions involved in these polymerizations are acyl substitution reactions, which will be covered in detail in <a href=\"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/chapter\/22-1-introduction\/\">chapter 22<\/a>.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155951\/index.png\" alt=\"\" width=\"684px\" height=\"460px\" \/>\r\n\r\n<\/div>\r\n<div id=\"section_6\" class=\"mt-section\">\r\n<h3 class=\"editable\">Characteristics of Condensation Polymers<\/h3>\r\nCondensation polymers form more slowly than addition polymers, often requiring heat, and they are generally lower in molecular weight. The terminal functional groups on a chain remain active, so that groups of shorter chains combine into longer chains in the late stages of polymerization. The presence of polar functional groups on the chains often enhances chain-chain attractions, particularly if these involve hydrogen bonding, and thereby crystallinity and tensile strength. The following examples of condensation polymers are illustrative.\r\n\r\nNote that for commercial synthesis the carboxylic acid components may actually be employed in the form of derivatives such as simple esters. Also, the polymerization reactions for Nylon 6 and Spandex do not proceed by elimination of water or other small molecules. Nevertheless, the polymer clearly forms by a step-growth process. Some Condensation Polymers:\r\n\r\n<img class=\"size-full wp-image-2344 aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/05184534\/table.png\" alt=\"\" width=\"696\" height=\"668\" \/>\r\n\r\nHere, T<sub>g<\/sub> represents the glass transition temperature, while T<sub>m<\/sub> represents the melting temperature. The difference in T<sub>g<\/sub> and T<sub>m<\/sub> between the first polyester (completely aliphatic) and the two nylon polyamides (5th &amp; 6th entries) shows the effect of intra-chain hydrogen bonding on crystallinity.\u00a0 Kevlar and Nomex are extremely tough and resistant materials, which find use in bullet-proof vests and fire resistant clothing.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155956\/index2.png\" alt=\"\" width=\"514px\" height=\"243px\" \/>\r\n\r\nMany polymers, both addition and condensation, are used as fibers The chief methods of spinning synthetic polymers into fibers are from melts or viscous solutions. Polyesters, polyamides and polyolefins are usually spun from melts, provided the T<sub>m<\/sub> is not too high. Polyacrylates suffer thermal degradation and are therefore spun from solution in a volatile solvent. Cold-drawing is an important physical treatment that improves the strength and appearance of these polymer fibers. At temperatures above T<sub>g<\/sub>, a thicker than desired fiber can be forcibly stretched to many times its length; and in so doing the polymer chains become untangled, and tend to align in a parallel fashion. This cold-drawing procedure organizes randomly oriented crystalline domains, and also aligns amorphous domains so they become more crystalline. In these cases, the physically oriented morphology is stabilized and retained in the final product. This contrasts with elastomeric polymers, for which the stretched or aligned morphology is unstable relative to the amorphous random coil morphology.\r\n\r\nThis cold-drawing treatment may also be used to treat polymer films (e.g. Mylar &amp; Saran) as well as fibers.\r\n\r\n<a class=\"thumb\" title=\"index3aa.png\" href=\"https:\/\/chem.libretexts.org\/@api\/deki\/files\/15905\/index3aa.png?revision=1\" rel=\"internal\"><img class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155958\/index3aa.png\" alt=\"index3aa.png\" width=\"350px\" height=\"192px\" \/><\/a><a class=\"thumb\" title=\"index3a.png\" href=\"https:\/\/chem.libretexts.org\/@api\/deki\/files\/15904\/index3a.png?revision=1\" rel=\"internal\"><img class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28160000\/index3a.png\" alt=\"index3a.png\" width=\"350px\" height=\"192px\" \/><\/a>\r\n\r\nStep-growth polymerization is also used for preparing a class of adhesives and amorphous solids called epoxy resins. Here the covalent bonding occurs by an S<sub>N<\/sub>2 reaction between a nucleophile, usually an amine, and a terminal epoxide. In the following example, the same bisphenol A intermediate used as a monomer for Lexan serves as a difunctional scaffold to which the epoxide rings are attached. Bisphenol A is prepared by the acid-catalyzed condensation of acetone with phenol.\r\n\r\n<img class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28160003\/index4.png\" alt=\"\" width=\"644px\" height=\"111px\" \/>\r\n\r\n<\/div>\r\n<div id=\"section_7\" class=\"mt-section\">\r\n<h3>Video<\/h3>\r\nhttps:\/\/youtu.be\/HpPHN7fcLHI\r\n\r\n<img class=\"alignnone wp-image-2953 size-thumbnail\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/08133038\/frame-29-150x150.png\" alt=\"\" width=\"150\" height=\"150\" \/>\r\n<h3 class=\"editable\">Contributors<\/h3>\r\n<ul>\r\n \t<li>William Reusch, Professor Emeritus (<a class=\"external\" title=\"http:\/\/www.msu.edu\/\" href=\"http:\/\/www.msu.edu\/\" target=\"_blank\" rel=\"external nofollow noopener\">Michigan State U.<\/a>), <a class=\"external\" title=\"Template:ContribReusch\" href=\"https:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/intro1.htm\" target=\"_blank\" rel=\"external nofollow noopener\">Virtual Textbook of\u00a0Organic\u00a0Chemistry<\/a><\/li>\r\n \t<li>Jim Clark (<a class=\"external\" title=\"http:\/\/www.chemguide.co.uk\" href=\"http:\/\/www.chemguide.co.uk\" target=\"_blank\" rel=\"external nofollow noopener\">Chemguide.co.uk<\/a>)<\/li>\r\n<\/ul>\r\n<\/div>\r\n<\/section><\/article>","rendered":"<header class=\"elm-header\">\n<div class=\"elm-header-custom\">\n<div class=\"mt-container-secondary\"><span style=\"font-size: 1rem;text-align: initial\">Prior to the early 1920&#8217;s, chemists doubted the existence of molecules having molecular weights greater than a few thousand. This limiting view was challenged by <\/span><a class=\"external\" style=\"font-size: 1em;text-align: initial\" href=\"http:\/\/www.chemistry.msu.edu\/Portraits\/PortraitsHH_Detail.asp?HH_LName=Staudinger\" target=\"_blank\" rel=\"external nofollow noopener\">Hermann Staudinger<\/a><span style=\"font-size: 1em;text-align: initial\">, a German chemist with experience in studying natural compounds such as rubber and cellulose. In contrast to the prevailing rationalization of these substances as aggregates of small molecules, Staudinger proposed they were made up of <\/span><strong style=\"font-size: 1em;text-align: initial\">macromolecules<\/strong><span style=\"font-size: 1em;text-align: initial\"> composed of 10,000 or more atoms. He formulated a <\/span><strong style=\"font-size: 1em;text-align: initial\">polymeric<\/strong><span style=\"font-size: 1em;text-align: initial\"> structure for <\/span><a class=\"external\" style=\"font-size: 1em;text-align: initial\" href=\"http:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/lipids.htm#terp2\" target=\"_blank\" rel=\"external nofollow noopener\">rubber<\/a><span style=\"font-size: 1em;text-align: initial\">, based on a repeating isoprene unit (referred to as a monomer). For his contributions to chemistry, Staudinger received the 1953 Nobel Prize. The terms <\/span><strong style=\"font-size: 1em;text-align: initial\">polymer<\/strong><span style=\"font-size: 1em;text-align: initial\"> and <\/span><strong style=\"font-size: 1em;text-align: initial\">monomer<\/strong><span style=\"font-size: 1em;text-align: initial\"> were derived from the Greek roots <\/span><u style=\"font-size: 1em;text-align: initial\">poly<\/u><span style=\"font-size: 1em;text-align: initial\"> (many), <\/span><u style=\"font-size: 1em;text-align: initial\">mono<\/u><span style=\"font-size: 1em;text-align: initial\"> (one) and <\/span><u style=\"font-size: 1em;text-align: initial\">meros<\/u><span style=\"font-size: 1em;text-align: initial\"> (part).<\/span><\/div>\n<\/div>\n<\/header>\n<article id=\"elm-main-content\" class=\"elm-content-container\">\n<section class=\"mt-content-container\">Recognition that polymeric macromolecules make up many important natural materials was followed by the creation of synthetic analogs having a variety of properties. Indeed, applications of these materials as fibers, flexible films, adhesives, resistant paints and tough but light solids have transformed modern society. Some important examples of these substances are discussed in the following sections.There are two general types of polymerization reactions: addition polymerization and condensation polymerization. In <span class=\"margin_term\"><a class=\"glossterm\">addition polymerization<\/a><\/span>, the monomers add to one another in such a way that the polymer contains all the atoms of the starting monomers. Ethylene molecules are joined together in long chains.<\/section>\n<\/article>\n<section><\/section>\n<section>Strictly speaking, this chapter is on radical reactions, which include most addition polymerization processes.\u00a0 However, in order to cover the topic of polymers properly, we are including a brief section on condensation polymerization (usually based on substitution chemistry) here as well.<\/section>\n<article id=\"elm-main-content\" class=\"elm-content-container\">\n<section class=\"mt-content-container\">\n<div id=\"note\">\n<div class=\"textbox\">\n<p class=\"boxtitle\">Note<\/p>\n<p class=\"para\">Many natural materials\u2014such as proteins, cellulose and starch, and complex silicate minerals\u2014are polymers. Artificial fibers, films, plastics, semisolid resins, and rubbers are also polymers. More than half the compounds produced by the chemical industry are synthetic polymers.<\/p>\n<\/div>\n<\/div>\n<div id=\"section_1\" class=\"mt-section\">\n<h3 class=\"editable\">Chain-Reaction (Addition) Polymerization<\/h3>\n<p>The polymerization can be represented by the reaction of a few monomer units:<\/p>\n<div class=\"informalfigure large block\"><img loading=\"lazy\" decoding=\"async\" class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155923\/polymerization.jpg\" alt=\"polymerization.jpg\" width=\"442\" height=\"173\" \/><\/div>\n<p class=\"para editable block\">The bond lines extending at the ends in the formula of the product indicate that the structure extends for many units in each direction. Notice that all the atoms\u2014two carbon atoms and four hydrogen atoms\u2014of each monomer molecule are incorporated into the polymer structure. Because displays such as the one above are cumbersome, the polymerization is often abbreviated as follows:<\/p>\n<p style=\"text-align: center\"><em>n<\/em>CH<sub>2<\/sub>=CH<sub>2<\/sub> \u2192\u00a0\u00a0\u00a0 [\u00a0 CH<sub>2<\/sub>CH<sub>2<\/sub>\u00a0 ] \u00a0 <em><sub>n<\/sub><\/em><\/p>\n<p>During the polymeriation of ethene, thousands of ethene molecules join together to make poly(ethene) &#8211; commonly called polythene. The reaction is done at high pressures in the presence of a trace of oxygen as an initiator.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155928\/polymeq1.gif\" alt=\"\" width=\"229px\" height=\"21px\" \/><\/p>\n<p class=\"para editable block\">Some common addition polymers are listed in the Table below . Note that all the monomers have carbon-to-carbon double bonds. Many polymers are mundane (e.g., plastic bags, food wrap, toys, and tableware), but there are also polymers that conduct electricity, have amazing adhesive properties, or are stronger than steel but much lighter in weight.<\/p>\n<table style=\"margin: auto;border-spacing: 0px;width: 665px\" cellpadding=\"0\">\n<caption><em><strong>Table <\/strong><\/em> <em><strong>:<\/strong> Some Addition Polymers<\/em><\/caption>\n<thead>\n<tr>\n<th style=\"width: 88px\">Monomer<\/th>\n<th style=\"width: 175px\">Polymer<\/th>\n<th style=\"width: 143px\">Polymer Name<\/th>\n<th style=\"width: 259px\">Some Uses<\/th>\n<\/tr>\n<\/thead>\n<tbody>\n<tr>\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CH<sub class=\"subscript\">2<\/sub><\/td>\n<td style=\"width: 175px\">~CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>CH<sub class=\"subscript\">2<\/sub>~<\/td>\n<td style=\"width: 143px\">polyethylene<\/td>\n<td style=\"width: 259px\">plastic bags, bottles, toys, electrical insulation<\/td>\n<\/tr>\n<tr>\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CHCH<sub class=\"subscript\">3<\/sub><\/td>\n<td style=\"width: 175px\"><img decoding=\"async\" class=\"internal default\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155930\/polypropylene.jpg\" alt=\"polypropylene.jpg\" width=\"200px\" height=\"93px\" \/><\/td>\n<td style=\"width: 143px\">polypropylene<\/td>\n<td style=\"width: 259px\">carpeting, bottles, luggage, exercise clothing<\/td>\n<\/tr>\n<tr>\n<td style=\"width: 88px\">CH<sub class=\"subscript\">2<\/sub>=CHCl<\/td>\n<td style=\"width: 175px\"><img decoding=\"async\" class=\"internal default\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155933\/polyvinyl_chloride.jpg\" alt=\"polyvinyl chloride.jpg\" width=\"200px\" height=\"78px\" \/><\/td>\n<td style=\"width: 143px\">polyvinyl chloride<\/td>\n<td style=\"width: 259px\">bags for intravenous solutions, pipes, tubing, floor coverings<\/td>\n<\/tr>\n<tr>\n<td style=\"width: 88px\">CF<sub class=\"subscript\">2<\/sub>=CF<sub class=\"subscript\">2<\/sub><\/td>\n<td style=\"width: 175px\">~CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>CF<sub class=\"subscript\">2<\/sub>~<\/td>\n<td style=\"width: 143px\">polytetrafluoroethylene<\/td>\n<td style=\"width: 259px\">nonstick coatings, electrical insulation<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<div id=\"section_2\" class=\"mt-section\">\n<p>&nbsp;<\/p>\n<h4 class=\"editable\">Step 1: Chain Initiation<\/h4>\n<p>The oxygen reacts with some of the ethene to give an organic peroxide. Organic peroxides are very reactive molecules containing oxygen-oxygen single bonds which are quite weak and which break easily to give free radicals. You can short-cut the process by adding other organic peroxides directly to the ethene instead of using oxygen if you want to. The type of the free radicals that start the reaction off vary depending on their source. For simplicity we give them a general formula: $$Ra ^{\\bullet}$$<\/p>\n<\/div>\n<div id=\"section_3\" class=\"mt-section\">\n<h4 class=\"editable\">Step 2: Chain Propagation<\/h4>\n<p>In an ethene molecule, CH<sub>2<\/sub>=CH<sub>2<\/sub>, the two pairs of electrons which make up the double bond aren&#8217;t the same. One pair is held securely on the line between the two carbon nuclei in a sigma bond. The other pair is more loosely held in an orbital above and below the plane of the molecule in a $$\\pi$$ bond.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155936\/ethenebonds.gif\" alt=\"\" width=\"133px\" height=\"117px\" \/><\/p>\n<div>\n<div class=\"textbox\">\n<p class=\"boxtitle\">Note<\/p>\n<p>It would be helpful &#8211; but not essential &#8211; if you read about the <a class=\"external\" href=\"http:\/\/www.chemguide.co.uk\/basicorg\/bonding\/ethene.html#top\" target=\"_blank\" rel=\"external nofollow noopener\">structure of ethene<\/a> before you went on. If the diagram above is unfamiliar to you, then you certainly ought to read this background material.<\/p>\n<\/div>\n<\/div>\n<p>Imagine what happens if a free radical approaches the $$\\pi$$ bond in ethene.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155938\/ethenera.gif\" alt=\"\" width=\"339px\" height=\"94px\" \/><\/p>\n<div>\n<div class=\"textbox\">\n<p class=\"boxtitle\">Note<\/p>\n<p>Don&#8217;t worry that we&#8217;ve gone back to a simpler diagram. As long as you realise that the pair of electrons shown between the two carbon atoms is in a $$\\pi$$ bond &#8211; and therefore vulnerable &#8211; that&#8217;s all that really matters for this mechanism.<\/p>\n<\/div>\n<\/div>\n<p>The sigma bond between the carbon atoms isn&#8217;t affected by any of this. The free radical, Ra<img loading=\"lazy\" decoding=\"async\" style=\"text-align: absmiddle\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155941\/electron.gif\" alt=\"image\" width=\"7\" height=\"7\" \/>, uses one of the electrons in the $$\\pi$$ bond to help to form a new bond between itself and the left hand carbon atom &#8211; a radical addition step. The other electron returns to the right hand carbon. You can show this using curved arrow notation (with single-headed &#8220;fish-hook&#8221; arrows) if you want to:<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155943\/polymfh.gif\" alt=\"\" width=\"337px\" height=\"41px\" \/><\/p>\n<div>\n<p class=\"boxtitle\"><span style=\"font-size: 1rem;text-align: initial\">This is energetically worth doing because the new bond between the radical and the carbon is stronger than the $$\\pi$$ bond which is broken. You would get more energy out when the new bond is made than was used to break the old one. The more energy that is given out, the more stable the system becomes. What we&#8217;ve now got is a bigger free radical &#8211; lengthened by CH<\/span><sub style=\"text-align: initial\">2<\/sub><span style=\"font-size: 1rem;text-align: initial\">CH<\/span><sub style=\"text-align: initial\">2<\/sub><span style=\"font-size: 1rem;text-align: initial\">. That can react with another ethene molecule in the same way:<\/span><\/p>\n<\/div>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155945\/polymeq3.gif\" alt=\"\" width=\"346px\" height=\"19px\" \/><\/p>\n<p>So now the radical is even bigger. That can react with another ethene &#8211; and so on and so on. The polymer chain gets longer and longer.<\/p>\n<\/div>\n<div id=\"section_4\" class=\"mt-section\">\n<h4 class=\"editable\">Step 3: Chain Termination<\/h4>\n<p>The chain does not, however, grow indefinitely. Sooner or later two free radicals will collide together.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155948\/polymeq4.gif\" alt=\"\" width=\"352px\" height=\"19px\" \/><\/p>\n<p>That immediately stops the growth of two chains and produces one of the final molecules in the poly(ethene). It is important to realise that the poly(ethene) is going to be a mixture of molecules of different sizes, made in this sort of random way. Because chain termination is a random process, poly(ethene) will be made up of chains of different lengths.<\/p>\n<\/div>\n<\/div>\n<div id=\"section_5\" class=\"mt-section\">\n<h3 class=\"editable\">Step-Reaction (Condensation) Polymerization<\/h3>\n<p>A large number of important and useful polymeric materials are not formed by chain-growth processes involving reactive species such as radicals, but proceed instead by conventional functional group transformations of polyfunctional reactants. These polymerizations often (but not always) occur with loss of a small byproduct, such as water, and generally (but not always) combine two different components in an alternating structure. The polyester Dacron and the polyamide Nylon 66, shown here, are two examples of synthetic condensation polymers, also known as step-growth polymers. In contrast to chain-growth polymers, most of which grow by carbon-carbon bond formation, step-growth polymers generally grow by carbon-heteroatom bond formation (C-O &amp; C-N in Dacron &amp; Nylon respectively). Although polymers of this kind might be considered to be alternating copolymers, the repeating monomeric unit is usually defined as a combined moiety.<\/p>\n<p>Examples of naturally occurring condensation polymers are cellulose, the polypeptide chains of proteins, and poly(\u03b2-hydroxybutyric acid), a polyester synthesized in large quantity by certain soil and water bacteria. Formulas for these will be displayed below by clicking on the diagram.<\/p>\n<p>Many of the reactions involved in these polymerizations are acyl substitution reactions, which will be covered in detail in <a href=\"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/chapter\/22-1-introduction\/\">chapter 22<\/a>.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155951\/index.png\" alt=\"\" width=\"684px\" height=\"460px\" \/><\/p>\n<\/div>\n<div id=\"section_6\" class=\"mt-section\">\n<h3 class=\"editable\">Characteristics of Condensation Polymers<\/h3>\n<p>Condensation polymers form more slowly than addition polymers, often requiring heat, and they are generally lower in molecular weight. The terminal functional groups on a chain remain active, so that groups of shorter chains combine into longer chains in the late stages of polymerization. The presence of polar functional groups on the chains often enhances chain-chain attractions, particularly if these involve hydrogen bonding, and thereby crystallinity and tensile strength. The following examples of condensation polymers are illustrative.<\/p>\n<p>Note that for commercial synthesis the carboxylic acid components may actually be employed in the form of derivatives such as simple esters. Also, the polymerization reactions for Nylon 6 and Spandex do not proceed by elimination of water or other small molecules. Nevertheless, the polymer clearly forms by a step-growth process. Some Condensation Polymers:<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-full wp-image-2344 aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/05184534\/table.png\" alt=\"\" width=\"696\" height=\"668\" \/><\/p>\n<p>Here, T<sub>g<\/sub> represents the glass transition temperature, while T<sub>m<\/sub> represents the melting temperature. The difference in T<sub>g<\/sub> and T<sub>m<\/sub> between the first polyester (completely aliphatic) and the two nylon polyamides (5th &amp; 6th entries) shows the effect of intra-chain hydrogen bonding on crystallinity.\u00a0 Kevlar and Nomex are extremely tough and resistant materials, which find use in bullet-proof vests and fire resistant clothing.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155956\/index2.png\" alt=\"\" width=\"514px\" height=\"243px\" \/><\/p>\n<p>Many polymers, both addition and condensation, are used as fibers The chief methods of spinning synthetic polymers into fibers are from melts or viscous solutions. Polyesters, polyamides and polyolefins are usually spun from melts, provided the T<sub>m<\/sub> is not too high. Polyacrylates suffer thermal degradation and are therefore spun from solution in a volatile solvent. Cold-drawing is an important physical treatment that improves the strength and appearance of these polymer fibers. At temperatures above T<sub>g<\/sub>, a thicker than desired fiber can be forcibly stretched to many times its length; and in so doing the polymer chains become untangled, and tend to align in a parallel fashion. This cold-drawing procedure organizes randomly oriented crystalline domains, and also aligns amorphous domains so they become more crystalline. In these cases, the physically oriented morphology is stabilized and retained in the final product. This contrasts with elastomeric polymers, for which the stretched or aligned morphology is unstable relative to the amorphous random coil morphology.<\/p>\n<p>This cold-drawing treatment may also be used to treat polymer films (e.g. Mylar &amp; Saran) as well as fibers.<\/p>\n<p><a class=\"thumb\" title=\"index3aa.png\" href=\"https:\/\/chem.libretexts.org\/@api\/deki\/files\/15905\/index3aa.png?revision=1\" rel=\"internal\"><img decoding=\"async\" class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28155958\/index3aa.png\" alt=\"index3aa.png\" width=\"350px\" height=\"192px\" \/><\/a><a class=\"thumb\" title=\"index3a.png\" href=\"https:\/\/chem.libretexts.org\/@api\/deki\/files\/15904\/index3a.png?revision=1\" rel=\"internal\"><img decoding=\"async\" class=\"internal default aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28160000\/index3a.png\" alt=\"index3a.png\" width=\"350px\" height=\"192px\" \/><\/a><\/p>\n<p>Step-growth polymerization is also used for preparing a class of adhesives and amorphous solids called epoxy resins. Here the covalent bonding occurs by an S<sub>N<\/sub>2 reaction between a nucleophile, usually an amine, and a terminal epoxide. In the following example, the same bisphenol A intermediate used as a monomer for Lexan serves as a difunctional scaffold to which the epoxide rings are attached. Bisphenol A is prepared by the acid-catalyzed condensation of acetone with phenol.<\/p>\n<p><img decoding=\"async\" class=\"internal aligncenter\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/28160003\/index4.png\" alt=\"\" width=\"644px\" height=\"111px\" \/><\/p>\n<\/div>\n<div id=\"section_7\" class=\"mt-section\">\n<h3>Video<\/h3>\n<p><iframe loading=\"lazy\" id=\"oembed-1\" title=\"Free radical polymerization. Animation (IQOG-CSIC)\" width=\"500\" height=\"281\" src=\"https:\/\/www.youtube.com\/embed\/HpPHN7fcLHI?feature=oembed&#38;rel=0\" frameborder=\"0\" allowfullscreen=\"allowfullscreen\"><\/iframe><\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignnone wp-image-2953 size-thumbnail\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/3773\/2018\/11\/08133038\/frame-29-150x150.png\" alt=\"\" width=\"150\" height=\"150\" \/><\/p>\n<h3 class=\"editable\">Contributors<\/h3>\n<ul>\n<li>William Reusch, Professor Emeritus (<a class=\"external\" title=\"http:\/\/www.msu.edu\/\" href=\"http:\/\/www.msu.edu\/\" target=\"_blank\" rel=\"external nofollow noopener\">Michigan State U.<\/a>), <a class=\"external\" title=\"Template:ContribReusch\" href=\"https:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/intro1.htm\" target=\"_blank\" rel=\"external nofollow noopener\">Virtual Textbook of\u00a0Organic\u00a0Chemistry<\/a><\/li>\n<li>Jim Clark (<a class=\"external\" title=\"http:\/\/www.chemguide.co.uk\" href=\"http:\/\/www.chemguide.co.uk\" target=\"_blank\" rel=\"external nofollow noopener\">Chemguide.co.uk<\/a>)<\/li>\n<\/ul>\n<\/div>\n<\/section>\n<\/article>\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-939\">\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>Virtual Textbook of Chemistry. <strong>Authored by<\/strong>: William Reusch. <strong>Located at<\/strong>: <a target=\"_blank\" href=\"https:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/intro1.htm\">https:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/intro1.htm<\/a>. <strong>License<\/strong>: <em><a target=\"_blank\" rel=\"license\" href=\"https:\/\/creativecommons.org\/licenses\/by-nc-sa\/4.0\/\">CC BY-NC-SA: Attribution-NonCommercial-ShareAlike<\/a><\/em><\/li><li>Helping you to understand Chemistry. <strong>Authored by<\/strong>: Jim Clark. <strong>Located at<\/strong>: <a target=\"_blank\" href=\"http:\/\/www.chemguide.co.uk\/\">http:\/\/www.chemguide.co.uk\/<\/a>. <strong>License<\/strong>: <em><a target=\"_blank\" rel=\"license\" href=\"https:\/\/creativecommons.org\/licenses\/by\/4.0\/\">CC BY: Attribution<\/a><\/em><\/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":53384,"menu_order":5,"template":"","meta":{"_candela_citation":"[{\"type\":\"cc\",\"description\":\"Virtual Textbook of Chemistry\",\"author\":\"William Reusch\",\"organization\":\"\",\"url\":\"https:\/\/www2.chemistry.msu.edu\/faculty\/reusch\/VirtTxtJml\/intro1.htm\",\"project\":\"\",\"license\":\"cc-by-nc-sa\",\"license_terms\":\"\"},{\"type\":\"cc\",\"description\":\"Helping you to understand Chemistry\",\"author\":\"Jim Clark\",\"organization\":\"\",\"url\":\"http:\/\/www.chemguide.co.uk\/\",\"project\":\"\",\"license\":\"cc-by\",\"license_terms\":\"\"}]","CANDELA_OUTCOMES_GUID":"","pb_show_title":"on","pb_short_title":"","pb_subtitle":"","pb_authors":[],"pb_section_license":""},"chapter-type":[],"contributor":[],"license":[],"class_list":["post-939","chapter","type-chapter","status-publish","hentry"],"part":784,"_links":{"self":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapters\/939","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/wp\/v2\/users\/53384"}],"version-history":[{"count":13,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapters\/939\/revisions"}],"predecessor-version":[{"id":2993,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapters\/939\/revisions\/2993"}],"part":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/parts\/784"}],"metadata":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapters\/939\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/wp\/v2\/media?parent=939"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/pressbooks\/v2\/chapter-type?post=939"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/wp\/v2\/contributor?post=939"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-potsdam-organicchemistry2\/wp-json\/wp\/v2\/license?post=939"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}