Abstract
The temperature dependence of Raman shifts and line widths (full-width at half maxima or FWHM) for the A1 symmetric stretch of TO4 (T = Si, P, S) have been analyzed for nine alkali and alkaline earth silicates, phosphates, and sulfates. In crystalline silicates, the Q0 and Q2 species Raman shifts decrease with temperature, whereas FWHM increase. The strikingly similar behavior of Q0 and Q2 in silicates and Q0 in phosphates makes it possible to estimate to within ±4 cm−1 Raman shifts up to ~1000 K. Similarly systematic increases in FWHM with temperature can be estimated to within ±5 cm−1 up to ~1400 K. The type of element centering TO4 (i.e., Si, P, or S) has no appreciable effect on the temperature dependence of Raman shifts or line widths; the local environment of the Q0 and Q2 tetrahedra is the primary determinant of the temperature dependence. The type of cation in the first coordination sphere of the tetrahedron may have a secondary effect by affecting Heisenberg lifetimes of Raman virtual states.
Previous theoretical considerations have been modified to include the effect of the Heisenberg (or natural) lifetime on Raman FWHM. This contribution is required to explain the anomalous FWHM of Li2SiO3 relative to the FWHM of isostructural Na2SiO3 and the large Li2SO4 and Li3PO4 FWHM (relative to Ba and Sr phosphates). The theoretically based expressions dictate a necessary, simple relationship among temperature, Raman shift, and FWHM. The relationship is developed and it allows, with one measurement of Raman shift and FWHM (e.g., measured at 298 K), prediction of Raman shifts and FWHM of Q0 and Q2 crystals to within 5 cm−1 up to ~1500 K. The properties of the TO4 moiety (T = Si, P, S) are mostly responsible for the striking regularity of Raman shifts and FWHM, although alkali and alkaline earth cations affect to varying extent Heisenberg lifetimes, hence FWHM.
Acknowledgments
The authors acknowledge logistical support provided by their associated universities. We thank Yang Song for sending us papers on phosphates by Zhai and associates. The authors are especially thankful to the managing editor, Sergio Speziale, Charles LeLosq, and another reviewer for their detailed editing of the manuscript. The manuscript has been improved greatly due primarily to their efforts.
References cited
Adamson, A.W. (1973) A Textbook of Physical Chemistry, 1079 p. Academic Press, New York.Search in Google Scholar
Antao, S.M. (2012) Structural trends for celestite (SrSO4), anglesite (PbSO4), and barite (BaSO4): Confirmation of expected variations within the SO4 groups. American Mineralogist, 97, 661–665.10.2138/am.2012.3905Search in Google Scholar
Armbruster, T., and Geiger, C.A. (1993) Andradite crystal chemistry, dynamic site disorder and structural strain in silicate garnets. European Journal of Mineralogy, 5, 59–71.10.1127/ejm/5/1/0059Search in Google Scholar
Balkanski, M., Wallis, R.F., and Haro, T. (1983) Anharmonic effects in light scattering due to optical phonons in silicon. Physical Review, 28, 1928–1934.10.1103/PhysRevB.28.1928Search in Google Scholar
Bancroft, G.M., Nesbitt, H.W., Henderson, G.S., O’Shaughnessy, C., Withers, A. C., and Neuville, D.R. (2018) Lorentzian dominated lineshapes and line widths for Raman symmetric stretch peaks (800–1200 cm−1) in Q species of alkali silicate glasses/melts. Journal of Non-Crystalline Solids, 484, 72–83. 10.1016/j.jnoncrysol.2018.01.018.Search in Google Scholar
Bartelmehs, K.L., Downs, R.T., Gibbs, G.V., Boisen, M.B., and Birch, J.B. (1995) Tetrahedral rigid-body motion in silicates. American Mineralogist, 80, 680–690.10.2138/am-1995-7-805Search in Google Scholar
Bernstein, E.R., and Meredith, G.R. (1977) Raman spectra of SiF4 and GeF4 crystals. Journal of Chemical Physics, 67, 4132–4138.10.1063/1.435390Search in Google Scholar
Bouhfid, M.A., Gruener, G., Mysen, B.O., and Richet, P. (2002) Premelting and calcium mobility in gehlenite (Ca2Al2SiO7) and pseudowollastonite (CaSiO3). Physics and Chemistry of Minerals, 29, 655–662.10.1007/s00269-002-0276-0Search in Google Scholar
Burke, H.H., and Herman, I.P. (1993) Temperature dependence of Raman scattering in Ge1-xSix alloys. Physical Review B, 48, 15,016–15,024.10.1103/PhysRevB.48.15016Search in Google Scholar PubMed
Cazzanelli, E., and Frech, R. (1984) Temperature dependent Raman spectra of monoclinic and cubic Li2SO4. Journal of Chemical Physics, 81, 4729–4736.10.1063/1.447522Search in Google Scholar
Cui, J.B., Amtmann, K., Ristein, J., and Ley, L. (1998) Noncontact temperature measurements of diamond by Raman scattering spectroscopy. Journal of Applied Physics, 83, 7929–7933.10.1063/1.367972Search in Google Scholar
Dean, K.J., Sherman, W.F., and Wilkinson, G.R. (1982) Temperature and pressure dependence of the Raman active modes of vibration in α-quartz. Spectrochimica Acta, 38A, 1105–1108.10.1016/0584-8539(82)80044-5Search in Google Scholar
Dimanov, A., and Ingrin, J. (1995) Premelting and high-temperature diffusion of Ca in synthetic diopside: An increase of the cation mobility. Physics and Chemistry of Minerals, 22, 437–442.10.1007/BF00200321Search in Google Scholar
Dimanov, A., and Jaoul, O. (1998) Calcium self-diffusion in diopside at high temperature: implications for transport properties. Physics and Chemistry of Minerals, 26, 116–127.10.1007/s002690050168Search in Google Scholar
Downs, R.T., Gibbs, G.V., Bartelmehs, K.L., and Boisen, M.B. (1992) Variations of bond lengths and volumes of silicate tetrahedra with temperature. American Mineralogist, 77, 751–757.Search in Google Scholar
Efimov, A.M. (1999) Vibrational spectra, related properties, and structure of inorganic glasses. Journal of Non-Crystalline Solids, 253, 95–118.10.1016/S0022-3093(99)00409-3Search in Google Scholar
Gibbs, G.V. (1982) Molecules as models for bonding in silicates. American Mineralogist, 67, 421–450.Search in Google Scholar
Hart, T.R., Aggarwal, R.L., and Lax, B. (1970) Temperature dependence of Raman scattering in silicon. Physical Review B, 1, 638–642.10.1103/PhysRevB.1.638Search in Google Scholar
Jacobsen, S.D., Smyth, J.R., Swope, R.J., and Downs, R.T. (1998) Rigid-body character of the SO4 groups in celestine, anglesite and barite. Canadian Mineralogist, 36, 1053–1060.Search in Google Scholar
Kingma, K.J., and Hemley, R.J. (1994) Raman spectroscopic study of microcrystalline silica. American Mineralogist, 79, 269–273.Search in Google Scholar
Klemens, P.F. (1966) Anharmonic decay of optical photons. Physical Review, 148, 845–848.10.1103/PhysRev.148.845Search in Google Scholar
Kolesov, B.A., and Geiger, C.A. (2004) A Raman spectroscopic study of Fe-Mg olivines. Physical Chemistry of Minerals, 31, 142–154.10.1007/s00269-003-0370-ySearch in Google Scholar
Liu, M.S., Bursill, L.A., Prawer, S., and Nugent, K.W. (1999) Temperature dependence of Raman scattering in single crystal GaN films. Applied Physics Letters, 74, 3125–3127.10.1063/1.124083Search in Google Scholar
Liu, M.S., Bursill, L.A., Prawer, S., and Beserman, R. (2000) Temperature dependence of the first-order Raman phonon line of diamond. Physical Review B, 61, 3391–3395.10.1103/PhysRevB.61.3391Search in Google Scholar
Loudon, R. (1963) Theory of the first-order Raman effect in crystals. Proceedings of the Royal Society of London A, 275, 218–232.Search in Google Scholar
McKeon, D.A., Bell, M.A., and Caracas, R. (2010) Theoretical determination of the Raman spectra of single-crystal forsterite (Mg2SiO4). American Mineralogist, 95, 980–986.10.2138/am.2010.3423Search in Google Scholar
McMillan, P.F., and Wolfe, G.H. (1995) Vibrational spectroscopy of silicate liquids. Reviews in Mineralogy, 32, 191–246.Search in Google Scholar
Menéndez, J., and Cardona, M. (1984) Temperature dependence of the first-order Raman scattering by phonons in Si, Ge, and α-Sn: Anharmonic effects. Physical Review B, 29, 2051–2059.10.1103/PhysRevB.29.2051Search in Google Scholar
Mohanen, K., Sharma, S.K., and Bishop, F.C. (1993) A Raman spectral study of forsterite-monticellite solid solutions. American Mineralogist, 78, 42–48.Search in Google Scholar
Moura, J.V.B., da Silva Filho, J.G., Freire, P.T.C., Luz-Lima, C., Pinheiro, G.S., Viana, B.C., Mendes Filho, J., Souza-Filho, A.G., and Saraiva, G.V. (2016) Phonon properties of (β-Ag2MoO4: Raman spectroscopy and ab initio calculations. Vibrational Spectroscopy, 86, 97–102.10.1016/j.vibspec.2016.06.009Search in Google Scholar
Nakamura, M., Orihara, H., Ishibashi, Y., Kim, P., and Hirano, S. (1990) Raman scattering of study of gallium orthophosphate (α-GaPO4)—temperature and pressure dependences. Journal of the Physics Society of Japan, 59, 1831–1834.10.1143/JPSJ.59.1831Search in Google Scholar
Nesbitt, H.W., Bancroft, G.M., Henderson, G.S., Richet, P., and O’Shaughnessy, C. (2017a) Melting, crystallization, and the glass transition: Toward a unified description for silicate phase transitions. American Mineralogist, 102, 412–420.10.2138/am-2017-5852Search in Google Scholar
Nesbitt, H.W., Henderson, G.S., Bancroft, G.M., and O’Shaughnessy, C. (2017b) Electron densities over Si and O atoms of tetrahedra and their impact on Raman stretching frequencies and Si-NBO force constants. Chemical Geology, 461, 65–74.10.1016/j.chemgeo.2016.11.022Search in Google Scholar
Nesbitt, H.W., Cormack, A.N., and Henderson, G.S. (2018) Defect contributions to the heat capacities and stabilities of chain, ring and sheet silicates, with implications for mantle minerals. American Mineralogist, 102, 2220–2229. 10.2138/am-2017-6103.Search in Google Scholar
Nishidate, K., and Sato, T. (1992) Temperature dependence of the line width of the first order Raman spectrum of a MgF2 crystal. Physical Review B, 46, 13,773–13,778.10.1103/PhysRevB.46.13773Search in Google Scholar
Omar, M.A. (1975) Elementary Solid State Physics: Principles and Applications, p.76–77. Addison-Wesley, Reading, Massachusetts.Search in Google Scholar
Park, K. (1967) Thermal variation of a Raman line width in calcite. Physics Letters, 25A, 490–491.10.1016/0375-9601(67)90002-3Search in Google Scholar
Popovic, L., Manoun, B., de Waal, D., Nieuwoudt, M.K., and Comins, J.D. (2003) Raman spectroscopic study of phase transitions in Li3PO4. Journal of Raman Spectroscopy, 34, 77–83.10.1002/jrs.954Search in Google Scholar
Ranieri, V., Bourgogne, D., Darracq, S., Cambon, M., Haines, J., Cambon, O., Leparc, R., Lecelut, C., Largeteau, A., and Demazeau, G. (2009) Raman scattering study of a-quartz and Si1-xGexO2 solutions. Physical Review B, 79, 224304 (9 p.).10.1103/PhysRevB.79.224304Search in Google Scholar
Richet, P., Mysen, B.O., and Andrault, D. (1996) Melting and premelting of silicates: Raman spectroscopy and X-ray diffraction of Li2SiO3 and Na2SiO3. Physics and Chemistry of Minerals, 23, 157–172.10.1007/BF00220727Search in Google Scholar
Richet, P., Mysen, B.O., and Ingrin, J. (1998) High temperature X-ray diffraction and Raman spectroscopy of diopside and pseudowollastonite. Physics and Chemistry of Minerals, 25, 401–404.10.1007/s002690050130Search in Google Scholar
Sadykov, S. (2004) Experimental researches of Na and Pb metaphosphates with high-temperature Raman spectroscopy. Herald of the Department of Earth Sciences RAS, 22, 1–2.Search in Google Scholar
Sato, T., and Asari, T. (1995) Temperature dependence of the line width of the first-order Raman spectrum for SnO2 crystal. Journal of the Physics Society of Japan, 64, 1193–1199.10.1143/JPSJ.64.1193Search in Google Scholar
Schmidt, C., and Zieman, M.A. (2000) In-situ Raman spectroscopy of quartz: A pressure sensor for hydrothermal diamond-anvil cell experiments at elevated temperatures. American Mineralogist, 85, 1725–1734.10.2138/am-2000-11-1216Search in Google Scholar
Sinagawa, T., Suda, J., Sato, T., and Saito, H. (2000) Lattice dynamics and temperature dependence of the first-order Raman spectra for PbMoO4 crystals. Journal of the Physics Society of Japan, 69, 464–472.10.1143/JPSJ.69.464Search in Google Scholar
Suda, J., Kamishima, O., Kawamura, J., Hattori, T., and Omiya, M. (2014) Phonon anharmonicity of phonon band gap effect of scheelite PbWO4 studied by Raman spectrometry and first-principles calculations. Solid State Communications, 192, 36–41.10.1016/j.ssc.2014.05.006Search in Google Scholar
Swamy, V., Dubrovinsky, L.S., and Matsui, M. (1997) High-temperature Raman spectroscopy and quasi-harmonic lattice dynamic simulation of diopside. Physics and Chemistry of Minerals, 24, 440–446.10.1007/s002690050058Search in Google Scholar
Voronko, Y.K., Sobol, A.A., and Shukshin, V.E. (2005) Structure of vanadium-oxygen and phosphorus-oxygen groups in molten alkali and alkaline-earth vanadates and phosphates: a high tempertaure Raman scattering study. Inorganic Materials, 41, 1243–1253.10.1007/s10789-005-0267-xSearch in Google Scholar
Voronko, Y.K., Sobol, A.A., and Shukshin, V.E. (2006) Raman spectra and structure of silicon-oxygen groups in crystalline, liquid, and glassy Mg2SiO4. Inorganic Materials, 42, 981–988.10.1134/S002016850609010XSearch in Google Scholar
Voronko, Y.K., Sobol, A.A., Shukshin, V.E., and Gerasymov, I. (2015) Structure and phase transitions of rare-earth pyrosilicates studied by Raman spectroscopy. Inorganic Materials, 51, 1039–1046.10.1134/S0020168515090204Search in Google Scholar
Wang, W., Chen, Z., Zhang, F., Saito, K., Tanaka, T., Nishio, M., and Guo, Q. (2016) Temperature dependence of Raman scattering in (β-(AlGa)2O3 thin films. AIP Advances, 6, 015111 (10 p.).10.1063/1.4940763Search in Google Scholar
Xue, W., Liu, A., Song, Y., and Zhai, S. (2012) High-pressure Raman spectra of Sr-substituted γ-Ca3-xSrx(PO4)2. High Pressure Research, 1, 1–7.10.1080/08957959.2011.637035Search in Google Scholar
You, J., Jiang, G., and Xu, K. (2001) High temperature Raman spectra of sodium disilicate crystal, glass and its liquid. Journal of Non-Crystalline Solids, 282, 125–131.10.1016/S0022-3093(01)00335-0Search in Google Scholar
Zhai, S., Xue, W., Lin, C.-C., Wu, X., and Ito, E. (2011) Raman spectra and X-ray diffraction of tuite at various temperatures. Physics and Chemistry of Minerals, 38, 639–646.10.1007/s00269-011-0436-1Search in Google Scholar
Zhai, S., Lin, C.-C., and Xue, W. (2014) Raman spectra of Sr3(PO4)2 and Ba3(PO4)2 orthophosphates at various temperatures. Vibrational Spectroscopy, 70, 6–11.10.1016/j.vibspec.2013.10.002Search in Google Scholar
Zucker, R., and Shim, S-H. (2009) In situ spectroscopy of MgSiO3 enstatite up to 1550 K. American Mineralogist, 94, 1638–1646.10.2138/am.2009.3210Search in Google Scholar
© 2018 Walter de Gruyter GmbH, Berlin/Boston
Articles in the same Issue
- Crystallography on Mars: Curiosity’s Bragging right
- Al diffusion in quartz
- Relationships between unit-cell parameters and composition for rock-forming minerals on Earth, Mars, and other extraterrestrial bodies
- Crystal chemistry of martian minerals from Bradbury Landing through Naukluft Plateau, Gale crater, Mars
- Petrogenesis of martian sulfides in the Chassigny meteorite
- Immiscible sulfide melts in primitive oceanic magmas: Evidence and implications from picrite lavas (Eastern Kamchatka, Russia)
- Snapshots of primitive arc magma evolution recorded by clinopyroxene textural and compositional variations: The case of hybrid crystal-rich enclaves from Capo Marargiu Volcanic District (Sardinia, Italy)
- Three-dimensional distribution of primary melt inclusions in garnets by X-ray microtomography
- Visible and short-wave infrared reflectance spectroscopy of selected REE-bearing silicate minerals
- Determination of Al/Si order in sillimanite by high angular resolution electron channeling X-ray spectroscopy, and implications for determining peak temperatures of sillimanite
- Ascent rates of rhyolitic magma at the onset of three caldera-forming eruptions
- Temperature dependence of Raman shifts and line widths for Q0 and Q2 crystals of silicates, phosphates, and sulfates
- Single-crystal elastic properties of minerals and related materials with cubic symmetry
- Sodium amphibole in the post-glaucophane high-pressure domain: The role of eckermannite
- Non-hydrostatic stress field orientation inferred from orthopyroxene (Pbca) to low-clinoenstatite (P21/c) inversion in partially dehydrated serpentinites
- Letter
- UHP Ti-chondrodite in the Zermatt-Saas serpentinite: Constraints on a new tectonic scenario
- Book Review
- Book Review
Articles in the same Issue
- Crystallography on Mars: Curiosity’s Bragging right
- Al diffusion in quartz
- Relationships between unit-cell parameters and composition for rock-forming minerals on Earth, Mars, and other extraterrestrial bodies
- Crystal chemistry of martian minerals from Bradbury Landing through Naukluft Plateau, Gale crater, Mars
- Petrogenesis of martian sulfides in the Chassigny meteorite
- Immiscible sulfide melts in primitive oceanic magmas: Evidence and implications from picrite lavas (Eastern Kamchatka, Russia)
- Snapshots of primitive arc magma evolution recorded by clinopyroxene textural and compositional variations: The case of hybrid crystal-rich enclaves from Capo Marargiu Volcanic District (Sardinia, Italy)
- Three-dimensional distribution of primary melt inclusions in garnets by X-ray microtomography
- Visible and short-wave infrared reflectance spectroscopy of selected REE-bearing silicate minerals
- Determination of Al/Si order in sillimanite by high angular resolution electron channeling X-ray spectroscopy, and implications for determining peak temperatures of sillimanite
- Ascent rates of rhyolitic magma at the onset of three caldera-forming eruptions
- Temperature dependence of Raman shifts and line widths for Q0 and Q2 crystals of silicates, phosphates, and sulfates
- Single-crystal elastic properties of minerals and related materials with cubic symmetry
- Sodium amphibole in the post-glaucophane high-pressure domain: The role of eckermannite
- Non-hydrostatic stress field orientation inferred from orthopyroxene (Pbca) to low-clinoenstatite (P21/c) inversion in partially dehydrated serpentinites
- Letter
- UHP Ti-chondrodite in the Zermatt-Saas serpentinite: Constraints on a new tectonic scenario
- Book Review
- Book Review