Quantitative definition of strength of chromophores in gemstones and the impact on color change in pyralspite garnets

The color of most garnets is derived from multiple color‐producing elements (chromophores). In this study we selectively isolate the ultraviolet–visible–near infrared (UV–Vis–NIR) spectra of four major chromophores (Fe2+, Mn2+, Cr3+ and V3+) by collecting and extrapolating the spectra of four repres...

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Veröffentlicht in:Color research and application 2022-10, Vol.47 (5), p.1134-1154
Hauptverfasser: Sun, Ziyin, Palke, Aaron C., Renfro, Nathan D., Rizzo, Jessa M., Hand, Dylan B., Sanchez, Diego
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container_end_page 1154
container_issue 5
container_start_page 1134
container_title Color research and application
container_volume 47
creator Sun, Ziyin
Palke, Aaron C.
Renfro, Nathan D.
Rizzo, Jessa M.
Hand, Dylan B.
Sanchez, Diego
description The color of most garnets is derived from multiple color‐producing elements (chromophores). In this study we selectively isolate the ultraviolet–visible–near infrared (UV–Vis–NIR) spectra of four major chromophores (Fe2+, Mn2+, Cr3+ and V3+) by collecting and extrapolating the spectra of four representative pyrope‐almandine‐spessartine (pyralspite) garnets. In order to study the color strength of these isolated chromophores and their impact on color change in garnet, we have proposed a new quantitative definition of strength of a chromophore. With the isolated garnet chromophore spectra, hypothetical garnet spectra with various chemical compositions can be simulated. By using these hypothetical garnet spectra, the impact of each chromophore on the color change behavior in pyralspite garnet was also quantitatively studied. Most pyralspite garnets can be successfully modeled using these four chromophores, however, this model cannot adequately describe those garnets containing the Fe3+/Fe2+ intervalence charge‐transfer transitions. Finally, a comprehensive excel data processing template (Appendix 3) written with VBA macro code was generated to help other researchers calculate colorimetric parameters and color panels from UV–Vis–NIR spectrum. In the template, we provided multiple types of conversion matrices and power distribution curves of different illuminants, so that different colorimetric parameter conversion and color panel calculation from UV–Vis–NIR spectrum can be selected with different combinations based on people's preference. The user guide of the excel template can be found in Appendix 4. The detailed calculation procedures and formulae used for the excel template can be found in Appendix 5. Figure 1. (A) The Euclidean distances between these color panels and the absolute white point (L* = 100, a* = 0, b* = 0) are all the same, which means these color panels have the same color strength. (B) Different chromophores (Mn2+ and V3+) can have different impact on the color change phenomenon in pyralspite garnets.
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In this study we selectively isolate the ultraviolet–visible–near infrared (UV–Vis–NIR) spectra of four major chromophores (Fe2+, Mn2+, Cr3+ and V3+) by collecting and extrapolating the spectra of four representative pyrope‐almandine‐spessartine (pyralspite) garnets. In order to study the color strength of these isolated chromophores and their impact on color change in garnet, we have proposed a new quantitative definition of strength of a chromophore. With the isolated garnet chromophore spectra, hypothetical garnet spectra with various chemical compositions can be simulated. By using these hypothetical garnet spectra, the impact of each chromophore on the color change behavior in pyralspite garnet was also quantitatively studied. Most pyralspite garnets can be successfully modeled using these four chromophores, however, this model cannot adequately describe those garnets containing the Fe3+/Fe2+ intervalence charge‐transfer transitions. Finally, a comprehensive excel data processing template (Appendix 3) written with VBA macro code was generated to help other researchers calculate colorimetric parameters and color panels from UV–Vis–NIR spectrum. In the template, we provided multiple types of conversion matrices and power distribution curves of different illuminants, so that different colorimetric parameter conversion and color panel calculation from UV–Vis–NIR spectrum can be selected with different combinations based on people's preference. The user guide of the excel template can be found in Appendix 4. The detailed calculation procedures and formulae used for the excel template can be found in Appendix 5. Figure 1. (A) The Euclidean distances between these color panels and the absolute white point (L* = 100, a* = 0, b* = 0) are all the same, which means these color panels have the same color strength. (B) Different chromophores (Mn2+ and V3+) can have different impact on the color change phenomenon in pyralspite garnets.</description><identifier>ISSN: 0361-2317</identifier><identifier>EISSN: 1520-6378</identifier><identifier>DOI: 10.1002/col.22789</identifier><language>eng</language><publisher>Hoboken, USA: John Wiley &amp; Sons, Inc</publisher><subject>Charge transfer ; Chemical composition ; Chromophores ; Color ; Colorimetry ; Conversion ; Data processing ; Electric power distribution ; garnet ; Garnets ; gemology ; Gems ; gemstone ; Infrared spectra ; Luminance distribution ; Magnesium aluminum silicates ; Mathematical models ; Near infrared radiation ; Parameters ; spectroscopy</subject><ispartof>Color research and application, 2022-10, Vol.47 (5), p.1134-1154</ispartof><rights>2022 Wiley Periodicals LLC.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c2979-5110711d58f14c3c534f6eb1a3ab6c35cd9535adb77b04ee48678c06b1ac23f33</citedby><cites>FETCH-LOGICAL-c2979-5110711d58f14c3c534f6eb1a3ab6c35cd9535adb77b04ee48678c06b1ac23f33</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://onlinelibrary.wiley.com/doi/pdf/10.1002%2Fcol.22789$$EPDF$$P50$$Gwiley$$H</linktopdf><linktohtml>$$Uhttps://onlinelibrary.wiley.com/doi/full/10.1002%2Fcol.22789$$EHTML$$P50$$Gwiley$$H</linktohtml><link.rule.ids>314,780,784,1417,27924,27925,45574,45575</link.rule.ids></links><search><creatorcontrib>Sun, Ziyin</creatorcontrib><creatorcontrib>Palke, Aaron C.</creatorcontrib><creatorcontrib>Renfro, Nathan D.</creatorcontrib><creatorcontrib>Rizzo, Jessa M.</creatorcontrib><creatorcontrib>Hand, Dylan B.</creatorcontrib><creatorcontrib>Sanchez, Diego</creatorcontrib><title>Quantitative definition of strength of chromophores in gemstones and the impact on color change in pyralspite garnets</title><title>Color research and application</title><description>The color of most garnets is derived from multiple color‐producing elements (chromophores). In this study we selectively isolate the ultraviolet–visible–near infrared (UV–Vis–NIR) spectra of four major chromophores (Fe2+, Mn2+, Cr3+ and V3+) by collecting and extrapolating the spectra of four representative pyrope‐almandine‐spessartine (pyralspite) garnets. In order to study the color strength of these isolated chromophores and their impact on color change in garnet, we have proposed a new quantitative definition of strength of a chromophore. With the isolated garnet chromophore spectra, hypothetical garnet spectra with various chemical compositions can be simulated. By using these hypothetical garnet spectra, the impact of each chromophore on the color change behavior in pyralspite garnet was also quantitatively studied. Most pyralspite garnets can be successfully modeled using these four chromophores, however, this model cannot adequately describe those garnets containing the Fe3+/Fe2+ intervalence charge‐transfer transitions. Finally, a comprehensive excel data processing template (Appendix 3) written with VBA macro code was generated to help other researchers calculate colorimetric parameters and color panels from UV–Vis–NIR spectrum. In the template, we provided multiple types of conversion matrices and power distribution curves of different illuminants, so that different colorimetric parameter conversion and color panel calculation from UV–Vis–NIR spectrum can be selected with different combinations based on people's preference. The user guide of the excel template can be found in Appendix 4. The detailed calculation procedures and formulae used for the excel template can be found in Appendix 5. Figure 1. (A) The Euclidean distances between these color panels and the absolute white point (L* = 100, a* = 0, b* = 0) are all the same, which means these color panels have the same color strength. 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In this study we selectively isolate the ultraviolet–visible–near infrared (UV–Vis–NIR) spectra of four major chromophores (Fe2+, Mn2+, Cr3+ and V3+) by collecting and extrapolating the spectra of four representative pyrope‐almandine‐spessartine (pyralspite) garnets. In order to study the color strength of these isolated chromophores and their impact on color change in garnet, we have proposed a new quantitative definition of strength of a chromophore. With the isolated garnet chromophore spectra, hypothetical garnet spectra with various chemical compositions can be simulated. By using these hypothetical garnet spectra, the impact of each chromophore on the color change behavior in pyralspite garnet was also quantitatively studied. Most pyralspite garnets can be successfully modeled using these four chromophores, however, this model cannot adequately describe those garnets containing the Fe3+/Fe2+ intervalence charge‐transfer transitions. Finally, a comprehensive excel data processing template (Appendix 3) written with VBA macro code was generated to help other researchers calculate colorimetric parameters and color panels from UV–Vis–NIR spectrum. In the template, we provided multiple types of conversion matrices and power distribution curves of different illuminants, so that different colorimetric parameter conversion and color panel calculation from UV–Vis–NIR spectrum can be selected with different combinations based on people's preference. The user guide of the excel template can be found in Appendix 4. The detailed calculation procedures and formulae used for the excel template can be found in Appendix 5. Figure 1. (A) The Euclidean distances between these color panels and the absolute white point (L* = 100, a* = 0, b* = 0) are all the same, which means these color panels have the same color strength. (B) Different chromophores (Mn2+ and V3+) can have different impact on the color change phenomenon in pyralspite garnets.</abstract><cop>Hoboken, USA</cop><pub>John Wiley &amp; Sons, Inc</pub><doi>10.1002/col.22789</doi><tpages>21</tpages></addata></record>
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source Wiley Journals
subjects Charge transfer
Chemical composition
Chromophores
Color
Colorimetry
Conversion
Data processing
Electric power distribution
garnet
Garnets
gemology
Gems
gemstone
Infrared spectra
Luminance distribution
Magnesium aluminum silicates
Mathematical models
Near infrared radiation
Parameters
spectroscopy
title Quantitative definition of strength of chromophores in gemstones and the impact on color change in pyralspite garnets
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