{"id":73,"date":"2017-01-30T17:53:34","date_gmt":"2017-01-30T17:53:34","guid":{"rendered":"https:\/\/courses.lumenlearning.com\/physicalgeology\/?post_type=chapter&#038;p=73"},"modified":"2017-01-30T18:57:33","modified_gmt":"2017-01-30T18:57:33","slug":"2-6-mineral-properties","status":"publish","type":"chapter","link":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/chapter\/2-6-mineral-properties\/","title":{"raw":"2.6 Mineral Properties","rendered":"2.6 Mineral Properties"},"content":{"raw":"<p>Minerals are universal. A crystal of hematite on Mars will have the same properties as one on Earth, and the same as one on a planet orbiting another star. That\u2019s good news for geology students who are planning interplanetary travel since we can use those properties to help us identify minerals anywhere. That doesn\u2019t mean that it\u2019s easy, however; identification of minerals takes a lot of practice. Some of the mineral properties that are useful for identification are as follows:\n<\/p><table><tbody><tr><td>Colour<\/td>\n<td>Streak<\/td>\n<td>Lustre<\/td>\n<td>Hardness<\/td>\n<\/tr><tr><td>Habit<\/td>\n<td>Cleavage\/fracture<\/td>\n<td>Density<\/td>\n<td>Other<\/td>\n<\/tr><\/tbody><\/table><strong>Colour<\/strong>\n\nFor most of us, color is one of our key ways of identifying objects. While some minerals have particularly distinctive colors that make good diagnostic properties, many do not, and for many, color is simply unreliable. The mineral sulphur (Figures 2.1 and 2.16) is always a distinctive and unique yellow. Hematite, on the other hand, is an example of a mineral for which color is not diagnostic. In some forms hematite is deep dull red, but in others it is black and shiny metallic (Figure 2.16). Many other minerals can have a wide range of colors (e.g., quartz, feldspar, amphibole, fluorite, and calcite). In most cases, the variations in colors are a result of varying proportions of trace elements within the mineral. In the case of quartz, for example, yellow quartz (citrine) has trace amounts of ferric iron (Fe<sup>3+<\/sup>), rose quartz has trace amounts of manganese, purple quartz (amethyst) has trace amounts of iron, and milky quartz, which is very common, has millions of fluid inclusions (tiny cavities, each filled with water).\n\n[caption id=\"attachment_841\" align=\"aligncenter\" width=\"300\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeologyearle\/wp-content\/uploads\/sites\/145\/2016\/06\/colors.png\"><img width=\"300\" height=\"130\" class=\"wp-image-841 size-medium\" alt=\"Figure 2.16 Examples of the colors of the minerals sulphur and hematite\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175219\/colors-300x130.png\"\/><\/a> Figure 2.16 Examples of the colors of the minerals sulphur and hematite[\/caption]\n\n<strong>Streak<\/strong>\n\nIn the context of minerals, \u201ccolor\u201d is what you see when light reflects off the surface of the sample. One reason that color can be so variable is that the type of surface is variable. If we grind a small amount of the sample to a powder we get a much better indication of its actual color. This can easily be done by scraping a corner of the sample across a streak plate (a piece of unglazed porcelain). The result is that some of the mineral gets ground to a powder and we can get a better impression of its \u201ctrue\u201d color (Figure 2.17).\n\n[caption id=\"attachment_847\" align=\"aligncenter\" width=\"300\"]<a href=\"https:\/\/opentextbc.ca\/physicalgeologyearle\/wp-content\/uploads\/sites\/145\/2016\/06\/hem-1.jpg\"><img width=\"300\" height=\"294\" class=\"size-medium wp-image-847\" alt=\"Figure 2.17 The streak colors of earthy hematite (left) and specular hematite (right). Although the specular hematite streak looks close to black, it does have red undertones that you can see if you look closely. [SE]\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175221\/hem-1-300x294.jpg\"\/><\/a> Figure 2.17 The streak colors of earthy hematite (left) and specular hematite (right). Although the specular hematite streak looks close to black, it does have red undertones that you can see if you look closely. [SE][\/caption]\u00a0\n\n<strong>Lustre<\/strong>\n\nLustre is the way light reflects off the surface of a mineral, and the degree to which it penetrates into the interior. The key distinction is between <strong>metallic<\/strong> and <strong>non-metallic<\/strong> <strong>lustres<\/strong>. Light does not pass through metals, and that is the main reason they look \u201cmetallic.\u201d Even a thin sheet of metal \u2014 such as aluminum foil \u2014 will prevent light from passing through it. Many non-metallic minerals may look as if light will not pass through them, but if you take a closer look at a thin edge of the mineral you can see that it does. If a non-metallic mineral has a shiny, reflective surface, then it is called \u201cglassy.\u201d If it is dull and non-reflective, it is \u201cearthy.\u201d Other types of non-metallic lustres are \u201csilky,\u201d \u201cpearly,\u201d and \u201cresinous.\u201d Lustre is a good diagnostic property, since most minerals will always appear either metallic or non-metallic. There are a few exceptions to this (e.g., hematite in Figure 2.16).\n\n<strong>Hardness<\/strong>\n\nOne of the most important diagnostic properties of a mineral is its hardness. In 1812 German mineralogist Friedrich Mohs came up with a list of 10 reasonably common minerals that had a wide range of hardness. These minerals are shown in Figure 2.18, with the Mohs scale of hardness along the bottom axis. In fact, while each mineral on the list is harder than the one before it, the relative measured hardnesses (vertical axis) are not linear. For example apatite is about three times harder than fluorite and diamond is three times harder than corundum. Some commonly available reference materials are also shown on this diagram, including a typical fingernail (2.5), a piece of copper wire (3.5), a knife blade or a piece of window glass (5.5), a hardened steel file (6.5), and a porcelain streak plate (7). These are tools that a geologist can use to measure the hardness of unknown minerals. For example, if you have a mineral that you can\u2019t scratch with your fingernail, but you can scratch with a copper wire, then its hardness is between 2.5 and 3.5. And of course the minerals themselves can be used to test other minerals.\n\n[caption id=\"attachment_70\" align=\"aligncenter\" width=\"400\"]<a href=\"http:\/\/opentextbc.ca\/geology\/wp-content\/uploads\/sites\/110\/2015\/06\/Mohs-scale-of-hardness.png\"><img width=\"400\" height=\"388\" class=\"wp-image-70\" alt=\"Figure 2.18 Minerals and reference materials in the Mohs scale of hardness. The &#x201C;measured hardness&#x201D; values are Vickers Hardness numbers.\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175224\/Mohs-scale-of-hardness.png\"\/><\/a> Figure 2.18 Minerals and reference materials in the Mohs scale of hardness. The \u201cmeasured hardness\u201d values are Vickers Hardness numbers.[\/caption]\n\n<strong>Crystal Habit<\/strong>\n\nWhen minerals form within rocks, there is a possibility that they will form in distinctive crystal shapes if they are not crowded out by other pre-existing minerals. Every mineral has one or more distinctive crystal <strong>habits<\/strong>, but it is not that common, in ordinary rocks, for the shapes to be obvious. Quartz, for example, will form six-sided prisms with pointed ends, but this typically happens only when it crystallizes from a hot water solution within a cavity in an existing rock (Figure 2.19). Pyrite can form cubic crystals (Figure 2.19), but can also form crystals with 12 faces, known as <strong>dodecahedra<\/strong> (\u201cdodeca\u201d means 12). The mineral garnet also forms dodecahedral crystals (Figure 2.19).\n\n[caption id=\"attachment_71\" align=\"aligncenter\" width=\"400\"]<a href=\"http:\/\/opentextbc.ca\/geology\/wp-content\/uploads\/sites\/110\/2015\/06\/Hexagonal-prisms.png\"><img width=\"400\" height=\"120\" class=\"wp-image-71\" alt=\"Figure 2.19 Hexagonal prisms of quartz (left), cubic crystals of pyrite (centre) and a dodecahedral crystal of garnet (right). Quartz Bresil by Didier Descouens is under CC BY 3.0 , Pyrite cubic crystals on marlstone by Carles Millan is under CC BY SA 3.0, Almandine garnet by Eurico Zimbres (FGEL\/UERJ) and Tom Epaminondas (mineral collector) is under CC BY SA 2.0\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175230\/Hexagonal-prisms.png\"\/><\/a> Figure 2.19 Hexagonal prisms of quartz (left), cubic crystals of pyrite (centre), and a dodecahedral crystal of garnet (right)[\/caption]\n\nBecause beautiful well-formed crystals are rare in ordinary rocks, habit isn\u2019t as useful a diagnostic feature as one might think. However, there are several minerals for which it is important. One is garnet, which is common in some metamorphic rocks and typically displays the dodecahedral shape. Another is amphibole, which forms long thin crystals, and is common in igneous rocks like granite (Figure 1.5).\n\nMineral habit is often related to the regular arrangement of the molecules that make up the mineral. Some of the terms that are used to describe habit include bladed, botryoidal (grape-like), dendritic (branched), drusy (an encrustation of minerals), equant (similar in all dimensions), fibrous, platy, prismatic (long and thin), and stubby.\n\n<strong>Cleavage and fracture<\/strong>\n\nCrystal habit is a reflection of how a mineral grows, while cleavage and fracture describe how it breaks. These characteristics are the most important diagnostic features of many minerals, and often the most difficult to understand and identify. <strong>Cleavage<\/strong> is what we see when a mineral breaks along a specific plane or planes, while <strong>fracture<\/strong> is an irregular break. Some minerals tend to cleave along planes at various fixed orientations, some do not cleave at all (they only fracture). Minerals that have cleavage can also fracture along surfaces that are not parallel to their cleavage planes.\n\nAs we\u2019ve already discussed, the way that minerals break is determined by their atomic arrangement and specifically by the orientation of weaknesses within the lattice. Graphite and the micas, for example, have cleavage planes parallel to their sheets (Figures 2.7 and 2.14), and halite has three cleavage planes parallel to the lattice directions (Figure 2.8).\n\nQuartz has no cleavage because it has equally strong Si<sup>\u2013<\/sup>O bonds in all directions, and feldspar has two cleavages at 90\u00b0 to each other (Figure 1.5).\n\nOne of the main difficulties with recognizing and describing cleavage is that it is visible only in individual crystals. Most rocks have small crystals and it\u2019s very difficult to see the cleavage within a small crystal. Geology students have to work hard to understand and recognize cleavage, but it\u2019s worth the effort since it is a reliable diagnostic property for most minerals.\n\n<strong>Density<\/strong>\n\n<strong>Density<\/strong> is a measure of the mass of a mineral per unit volume, and it is a useful diagnostic tool in some cases. Most common minerals, such as quartz, feldspar, calcite, amphibole, and mica, have what we call \u201caverage density\u201d (2.6 to 3.0 g\/cm<sup>3<\/sup>), and it would be difficult to tell them apart on the basis of their density. On the other hand, many of the metallic minerals, such as pyrite, hematite, and magnetite, have densities over 5 g\/cm<sup>3<\/sup>. They can easily be distinguished from the lighter minerals on the basis of density, but not necessarily from each other. A limitation of using density as a diagnostic tool is that one cannot assess it in minerals that are a small part of a rock with other minerals in it.\n\n<strong>Other properties<\/strong>\n\nSeveral other properties are also useful for identification of some minerals. For example, calcite is soluble in dilute acid and will give off bubbles of carbon dioxide. Magnetite is magnetic, so will affect a magnet. A few other minerals are weakly magnetic.\n<h3>Attributions<\/h3>\n<strong>Figure 2.19<\/strong>\n<a href=\"http:\/\/commons.wikimedia.org\/wiki\/File%3AQuartz_Br%C3%A9sil.jpg\">Quartz Bresil<\/a> by <a href=\"http:\/\/commons.wikimedia.org\/wiki\/User:Archaeodontosaurus\">Didier Descouens<\/a> is under <a href=\"https:\/\/creativecommons.org\/licenses\/by\/3.0\/\">CC BY 3.0<\/a>\n<a href=\"http:\/\/en.wikipedia.org\/wiki\/Pyrite#mediaviewer\/File:2780M-pyrite1.jpg\">Pyrite cubic crystals on marlstone<\/a> by Carles Millan is under <a href=\"https:\/\/creativecommons.org\/licenses\/by-sa\/3.0\/\">CC BY SA 3.0\n<\/a><a href=\"http:\/\/commons.wikimedia.org\/wiki\/File:Almandine.jpeg#filehistory\">Almandine garnet<\/a> by <a href=\"http:\/\/commons.wikimedia.org\/wiki\/File:Almandine.jpeg#filehistory\">Eurico Zimbres (FGEL\/UERJ) and Tom Epaminondas (mineral collector)<\/a> is under <a href=\"https:\/\/creativecommons.org\/licenses\/by-sa\/2.0\/br\/deed.en\">CC BY SA 2.0<\/a>","rendered":"<p>Minerals are universal. A crystal of hematite on Mars will have the same properties as one on Earth, and the same as one on a planet orbiting another star. That\u2019s good news for geology students who are planning interplanetary travel since we can use those properties to help us identify minerals anywhere. That doesn\u2019t mean that it\u2019s easy, however; identification of minerals takes a lot of practice. Some of the mineral properties that are useful for identification are as follows:\n<\/p>\n<table>\n<tbody>\n<tr>\n<td>Colour<\/td>\n<td>Streak<\/td>\n<td>Lustre<\/td>\n<td>Hardness<\/td>\n<\/tr>\n<tr>\n<td>Habit<\/td>\n<td>Cleavage\/fracture<\/td>\n<td>Density<\/td>\n<td>Other<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p><strong>Colour<\/strong><\/p>\n<p>For most of us, color is one of our key ways of identifying objects. While some minerals have particularly distinctive colors that make good diagnostic properties, many do not, and for many, color is simply unreliable. The mineral sulphur (Figures 2.1 and 2.16) is always a distinctive and unique yellow. Hematite, on the other hand, is an example of a mineral for which color is not diagnostic. In some forms hematite is deep dull red, but in others it is black and shiny metallic (Figure 2.16). Many other minerals can have a wide range of colors (e.g., quartz, feldspar, amphibole, fluorite, and calcite). In most cases, the variations in colors are a result of varying proportions of trace elements within the mineral. In the case of quartz, for example, yellow quartz (citrine) has trace amounts of ferric iron (Fe<sup>3+<\/sup>), rose quartz has trace amounts of manganese, purple quartz (amethyst) has trace amounts of iron, and milky quartz, which is very common, has millions of fluid inclusions (tiny cavities, each filled with water).<\/p>\n<div id=\"attachment_841\" style=\"width: 310px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeologyearle\/wp-content\/uploads\/sites\/145\/2016\/06\/colors.png\"><img loading=\"lazy\" decoding=\"async\" aria-describedby=\"caption-attachment-841\" width=\"300\" height=\"130\" class=\"wp-image-841 size-medium\" alt=\"Figure 2.16 Examples of the colors of the minerals sulphur and hematite\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175219\/colors-300x130.png\" \/><\/a><\/p>\n<p id=\"caption-attachment-841\" class=\"wp-caption-text\">Figure 2.16 Examples of the colors of the minerals sulphur and hematite<\/p>\n<\/div>\n<p><strong>Streak<\/strong><\/p>\n<p>In the context of minerals, \u201ccolor\u201d is what you see when light reflects off the surface of the sample. One reason that color can be so variable is that the type of surface is variable. If we grind a small amount of the sample to a powder we get a much better indication of its actual color. This can easily be done by scraping a corner of the sample across a streak plate (a piece of unglazed porcelain). The result is that some of the mineral gets ground to a powder and we can get a better impression of its \u201ctrue\u201d color (Figure 2.17).<\/p>\n<div id=\"attachment_847\" style=\"width: 310px\" class=\"wp-caption aligncenter\"><a href=\"https:\/\/opentextbc.ca\/physicalgeologyearle\/wp-content\/uploads\/sites\/145\/2016\/06\/hem-1.jpg\"><img loading=\"lazy\" decoding=\"async\" aria-describedby=\"caption-attachment-847\" width=\"300\" height=\"294\" class=\"size-medium wp-image-847\" alt=\"Figure 2.17 The streak colors of earthy hematite (left) and specular hematite (right). Although the specular hematite streak looks close to black, it does have red undertones that you can see if you look closely. [SE]\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175221\/hem-1-300x294.jpg\" \/><\/a><\/p>\n<p id=\"caption-attachment-847\" class=\"wp-caption-text\">Figure 2.17 The streak colors of earthy hematite (left) and specular hematite (right). Although the specular hematite streak looks close to black, it does have red undertones that you can see if you look closely. [SE]<\/p>\n<\/div>\n<p>\u00a0<\/p>\n<p><strong>Lustre<\/strong><\/p>\n<p>Lustre is the way light reflects off the surface of a mineral, and the degree to which it penetrates into the interior. The key distinction is between <strong>metallic<\/strong> and <strong>non-metallic<\/strong> <strong>lustres<\/strong>. Light does not pass through metals, and that is the main reason they look \u201cmetallic.\u201d Even a thin sheet of metal \u2014 such as aluminum foil \u2014 will prevent light from passing through it. Many non-metallic minerals may look as if light will not pass through them, but if you take a closer look at a thin edge of the mineral you can see that it does. If a non-metallic mineral has a shiny, reflective surface, then it is called \u201cglassy.\u201d If it is dull and non-reflective, it is \u201cearthy.\u201d Other types of non-metallic lustres are \u201csilky,\u201d \u201cpearly,\u201d and \u201cresinous.\u201d Lustre is a good diagnostic property, since most minerals will always appear either metallic or non-metallic. There are a few exceptions to this (e.g., hematite in Figure 2.16).<\/p>\n<p><strong>Hardness<\/strong><\/p>\n<p>One of the most important diagnostic properties of a mineral is its hardness. In 1812 German mineralogist Friedrich Mohs came up with a list of 10 reasonably common minerals that had a wide range of hardness. These minerals are shown in Figure 2.18, with the Mohs scale of hardness along the bottom axis. In fact, while each mineral on the list is harder than the one before it, the relative measured hardnesses (vertical axis) are not linear. For example apatite is about three times harder than fluorite and diamond is three times harder than corundum. Some commonly available reference materials are also shown on this diagram, including a typical fingernail (2.5), a piece of copper wire (3.5), a knife blade or a piece of window glass (5.5), a hardened steel file (6.5), and a porcelain streak plate (7). These are tools that a geologist can use to measure the hardness of unknown minerals. For example, if you have a mineral that you can\u2019t scratch with your fingernail, but you can scratch with a copper wire, then its hardness is between 2.5 and 3.5. And of course the minerals themselves can be used to test other minerals.<\/p>\n<div id=\"attachment_70\" style=\"width: 410px\" class=\"wp-caption aligncenter\"><a href=\"http:\/\/opentextbc.ca\/geology\/wp-content\/uploads\/sites\/110\/2015\/06\/Mohs-scale-of-hardness.png\"><img loading=\"lazy\" decoding=\"async\" aria-describedby=\"caption-attachment-70\" width=\"400\" height=\"388\" class=\"wp-image-70\" alt=\"Figure 2.18 Minerals and reference materials in the Mohs scale of hardness. The &#x201c;measured hardness&#x201d; values are Vickers Hardness numbers.\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175224\/Mohs-scale-of-hardness.png\" \/><\/a><\/p>\n<p id=\"caption-attachment-70\" class=\"wp-caption-text\">Figure 2.18 Minerals and reference materials in the Mohs scale of hardness. The \u201cmeasured hardness\u201d values are Vickers Hardness numbers.<\/p>\n<\/div>\n<p><strong>Crystal Habit<\/strong><\/p>\n<p>When minerals form within rocks, there is a possibility that they will form in distinctive crystal shapes if they are not crowded out by other pre-existing minerals. Every mineral has one or more distinctive crystal <strong>habits<\/strong>, but it is not that common, in ordinary rocks, for the shapes to be obvious. Quartz, for example, will form six-sided prisms with pointed ends, but this typically happens only when it crystallizes from a hot water solution within a cavity in an existing rock (Figure 2.19). Pyrite can form cubic crystals (Figure 2.19), but can also form crystals with 12 faces, known as <strong>dodecahedra<\/strong> (\u201cdodeca\u201d means 12). The mineral garnet also forms dodecahedral crystals (Figure 2.19).<\/p>\n<div id=\"attachment_71\" style=\"width: 410px\" class=\"wp-caption aligncenter\"><a href=\"http:\/\/opentextbc.ca\/geology\/wp-content\/uploads\/sites\/110\/2015\/06\/Hexagonal-prisms.png\"><img loading=\"lazy\" decoding=\"async\" aria-describedby=\"caption-attachment-71\" width=\"400\" height=\"120\" class=\"wp-image-71\" alt=\"Figure 2.19 Hexagonal prisms of quartz (left), cubic crystals of pyrite (centre) and a dodecahedral crystal of garnet (right). Quartz Bresil by Didier Descouens is under CC BY 3.0 , Pyrite cubic crystals on marlstone by Carles Millan is under CC BY SA 3.0, Almandine garnet by Eurico Zimbres (FGEL\/UERJ) and Tom Epaminondas (mineral collector) is under CC BY SA 2.0\" src=\"https:\/\/s3-us-west-2.amazonaws.com\/courses-images\/wp-content\/uploads\/sites\/1462\/2017\/01\/30175230\/Hexagonal-prisms.png\" \/><\/a><\/p>\n<p id=\"caption-attachment-71\" class=\"wp-caption-text\">Figure 2.19 Hexagonal prisms of quartz (left), cubic crystals of pyrite (centre), and a dodecahedral crystal of garnet (right)<\/p>\n<\/div>\n<p>Because beautiful well-formed crystals are rare in ordinary rocks, habit isn\u2019t as useful a diagnostic feature as one might think. However, there are several minerals for which it is important. One is garnet, which is common in some metamorphic rocks and typically displays the dodecahedral shape. Another is amphibole, which forms long thin crystals, and is common in igneous rocks like granite (Figure 1.5).<\/p>\n<p>Mineral habit is often related to the regular arrangement of the molecules that make up the mineral. Some of the terms that are used to describe habit include bladed, botryoidal (grape-like), dendritic (branched), drusy (an encrustation of minerals), equant (similar in all dimensions), fibrous, platy, prismatic (long and thin), and stubby.<\/p>\n<p><strong>Cleavage and fracture<\/strong><\/p>\n<p>Crystal habit is a reflection of how a mineral grows, while cleavage and fracture describe how it breaks. These characteristics are the most important diagnostic features of many minerals, and often the most difficult to understand and identify. <strong>Cleavage<\/strong> is what we see when a mineral breaks along a specific plane or planes, while <strong>fracture<\/strong> is an irregular break. Some minerals tend to cleave along planes at various fixed orientations, some do not cleave at all (they only fracture). Minerals that have cleavage can also fracture along surfaces that are not parallel to their cleavage planes.<\/p>\n<p>As we\u2019ve already discussed, the way that minerals break is determined by their atomic arrangement and specifically by the orientation of weaknesses within the lattice. Graphite and the micas, for example, have cleavage planes parallel to their sheets (Figures 2.7 and 2.14), and halite has three cleavage planes parallel to the lattice directions (Figure 2.8).<\/p>\n<p>Quartz has no cleavage because it has equally strong Si<sup>\u2013<\/sup>O bonds in all directions, and feldspar has two cleavages at 90\u00b0 to each other (Figure 1.5).<\/p>\n<p>One of the main difficulties with recognizing and describing cleavage is that it is visible only in individual crystals. Most rocks have small crystals and it\u2019s very difficult to see the cleavage within a small crystal. Geology students have to work hard to understand and recognize cleavage, but it\u2019s worth the effort since it is a reliable diagnostic property for most minerals.<\/p>\n<p><strong>Density<\/strong><\/p>\n<p><strong>Density<\/strong> is a measure of the mass of a mineral per unit volume, and it is a useful diagnostic tool in some cases. Most common minerals, such as quartz, feldspar, calcite, amphibole, and mica, have what we call \u201caverage density\u201d (2.6 to 3.0 g\/cm<sup>3<\/sup>), and it would be difficult to tell them apart on the basis of their density. On the other hand, many of the metallic minerals, such as pyrite, hematite, and magnetite, have densities over 5 g\/cm<sup>3<\/sup>. They can easily be distinguished from the lighter minerals on the basis of density, but not necessarily from each other. A limitation of using density as a diagnostic tool is that one cannot assess it in minerals that are a small part of a rock with other minerals in it.<\/p>\n<p><strong>Other properties<\/strong><\/p>\n<p>Several other properties are also useful for identification of some minerals. For example, calcite is soluble in dilute acid and will give off bubbles of carbon dioxide. Magnetite is magnetic, so will affect a magnet. A few other minerals are weakly magnetic.<\/p>\n<h3>Attributions<\/h3>\n<p><strong>Figure 2.19<\/strong><br \/>\n<a href=\"http:\/\/commons.wikimedia.org\/wiki\/File%3AQuartz_Br%C3%A9sil.jpg\">Quartz Bresil<\/a> by <a href=\"http:\/\/commons.wikimedia.org\/wiki\/User:Archaeodontosaurus\">Didier Descouens<\/a> is under <a href=\"https:\/\/creativecommons.org\/licenses\/by\/3.0\/\">CC BY 3.0<\/a><br \/>\n<a href=\"http:\/\/en.wikipedia.org\/wiki\/Pyrite#mediaviewer\/File:2780M-pyrite1.jpg\">Pyrite cubic crystals on marlstone<\/a> by Carles Millan is under <a href=\"https:\/\/creativecommons.org\/licenses\/by-sa\/3.0\/\">CC BY SA 3.0<br \/>\n<\/a><a href=\"http:\/\/commons.wikimedia.org\/wiki\/File:Almandine.jpeg#filehistory\">Almandine garnet<\/a> by <a href=\"http:\/\/commons.wikimedia.org\/wiki\/File:Almandine.jpeg#filehistory\">Eurico Zimbres (FGEL\/UERJ) and Tom Epaminondas (mineral collector)<\/a> is under <a href=\"https:\/\/creativecommons.org\/licenses\/by-sa\/2.0\/br\/deed.en\">CC BY SA 2.0<\/a><\/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-73\">\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>Physical Geology. <strong>Authored by<\/strong>: Steven Earle. <strong>Provided by<\/strong>: BC Campus. <strong>Located at<\/strong>: <a target=\"_blank\" href=\"https:\/\/opentextbc.ca\/geology\/\">https:\/\/opentextbc.ca\/geology\/<\/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":17,"menu_order":1,"template":"","meta":{"_candela_citation":"[{\"type\":\"cc\",\"description\":\"Physical Geology\",\"author\":\"Steven Earle\",\"organization\":\"BC Campus\",\"url\":\"https:\/\/opentextbc.ca\/geology\/\",\"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-73","chapter","type-chapter","status-publish","hentry"],"part":166,"_links":{"self":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapters\/73","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapters"}],"about":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/wp\/v2\/types\/chapter"}],"author":[{"embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/wp\/v2\/users\/17"}],"version-history":[{"count":2,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapters\/73\/revisions"}],"predecessor-version":[{"id":1139,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapters\/73\/revisions\/1139"}],"part":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/parts\/166"}],"metadata":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapters\/73\/metadata\/"}],"wp:attachment":[{"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/wp\/v2\/media?parent=73"}],"wp:term":[{"taxonomy":"chapter-type","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/pressbooks\/v2\/chapter-type?post=73"},{"taxonomy":"contributor","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/wp\/v2\/contributor?post=73"},{"taxonomy":"license","embeddable":true,"href":"https:\/\/courses.lumenlearning.com\/suny-purchase-physicalgeology\/wp-json\/wp\/v2\/license?post=73"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}