Keywords

Ionic Liquid Viscous Flow Molten Salt Radial Distribution Function Liquid Electrolyte 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

Preview

Unable to display preview. Download preview PDF.

Unable to display preview. Download preview PDF.

Further Reading

Seminal

  1. 1.
    W. Klemm and W. Biltz, “The Distribution of Ionic Conductivity amongMolten Chlorides of the Periodic Table,” Z. Anorg. Allg. Chem. 152: 255, 267 (1926).Google Scholar
  2. 2.
    J. O’M. Bockris and N. E. Richards, “Free Volumes and Equations of State for Molten Electrolytes,“ Proc. Roy. Soc. Lond. A241: 44 (1957).Google Scholar
  3. 3.
    C. Solomons, J. H. P. Clarke, and J. O’M. Bockris, “Identification of Complex Ions in Molten Liquids,” J. Chem. Phys. 49: 445 (1968).CrossRefGoogle Scholar
  4. 4.
    A. R. Ubbelohde, “Research on Molten Salts: Introduction” in Ionic Liquids, D. Inman and D. G. Lovering, eds., Plenum Press, New York (1981).Google Scholar

Review

  1. 1.
    J. E. Enderby, “The Structure of Molten Salts,” in Molten Salt Chemistry, G. Mamantov and N. R. Marassi, eds., p. 115, NATO ASI Series, Reidel, Dordrecht, The Netherlands (1987).Google Scholar

Papers

  1. 1.
    I. Farnonand J. F. Stebbins, J. Am. Chem. Soc. 112:32(1990).Google Scholar
  2. 2.
    I. Strubinizer, W. Sun, W. E. Cleland, and C. L. Hussey, Inorg. Chem. 29: 993 (1990).Google Scholar
  3. 3.
    R. L. McGreevy and M. A. Howe, Proc. Roy. Soc. Lond. 430: 241 (1990).Google Scholar
  4. 4.
    R. L. McGreevy and L. Pusztai, Proc. Roy. Soc. Lond. 241A: 261 (1990).Google Scholar
  5. 5.
    M. L. Saboungi, D. L. Price, C. Scamehorn, and M. P. Tosi, Europhys. Lett. 15: 281 (1991).Google Scholar
  6. 6.
    M. L. Saboungi, D. L. Price, C. Scamehom, and M. P. Tosi, Europhys. Lett. 15: 283 (1991).Google Scholar
  7. 7.
    Y. Toda, S. Hiroeka, Y. Katsumura,and I. Yemada, Ind. Eng. Chem. Res. 31: 2010(1992).Google Scholar
  8. 8.
    Z. Ardeniz and M. P. Tosi, Proc. Roy. Soc. Lond. A437: 85 (1992).Google Scholar
  9. 9.
    M. Oki, K. Fujishima, Y. Iwadate, and J. Mochinaga, in Molten Salt Chemistry and Technology, Proceedings of the Electrochemical Society, p. 9 (1993).Google Scholar
  10. 10.
    M. Mahr and K. G. Weil, in Molten Salt Chemistry and Technology, Proceedings of the Electrochemical Society, p. 147 (1993).Google Scholar
  11. 11.
    A. N. Yolshin and M. Yu Bryakotin, in Molten Salt Chemistry and Technology, Proceedings of the Electrochemical Society, p. 338 (1993).Google Scholar
  12. 12.
    M. Matsunaga, S. Hara, and K. Ogino, in Molten Salt Chemistry and Technology, Proceedings of the Electrochemical Society, p. 507 (1993).Google Scholar
  13. 13.
    Y. G. Boshuev and N. L. Kolesnikov, Industrial Laboratory 61: 98 (1995).Google Scholar
  14. 14.
    S. Ohno, A. C. Barnes, and J. E Enderby, J. Phys. Cond. Matt. 20: 3785 (1996).Google Scholar
  15. 15.
    U. Matenaar, J. Richter, and M. D. Zeidler, J. Magn. Reson, Series A 122: 72 (1996).Google Scholar
  16. 16.
    M. Abraham, M. C Abraham, and I. Ziogas, Electrochim. Acta 41: 903 (1996).CrossRefGoogle Scholar

Seminal

  1. 1.
    F. G. Edwards, J. E. Enderby, R. A. Howe, and D. I. Page, “Neutron Diffraction for Molten Salts,” J. Phys. Chem. 8: 3483 (1975).Google Scholar
  2. 2.
    J. Enderby, “The Structure of Molten Salts,” NATO ASISeries C 202: 1 (1987).Google Scholar
  3. 3.
    R. L. McGreevy and M.A. Howe, “Structure of Molten Salts,” J Phys. Condens Matt. 1: 9957 (1989).CrossRefGoogle Scholar
  4. 4.
    R. L. McGreevy, “New Methods for Molten Electrolytes,” Nuovo Cimento 12D: 685 (1990).Google Scholar

Review

  1. 1.
    B. Guillot and Y. Guissani, “Towards a Theory of Coexistence and Criticality in Real Molten Salts,” Mol. Phys. 87: 37 (1996).CrossRefGoogle Scholar

Papers

  1. 1.
    T. Kozlowski, Int. J. Phys. Chem. 100: 95 (1996).Google Scholar
  2. 2.
    J. Ohno, A. C. Barnes, and J. E. Enderby, J. Phys. Condens. Matt. 8: 3785 (1996).CrossRefGoogle Scholar
  3. 3.
    Z. Akdeniz, G. Pastore, and H. P. Tosi, Phys. Chem. Liq. 32: 191 (1996).Google Scholar
  4. 4.
    T. Koslowski, Ber Bunsen-Ges Phys Chem., Int J Phys. Chem. 100: 95 (1996).Google Scholar
  5. 5.
    L. Mouron, G. Roullet, J. J. Legendre, and G. Picard, Computational Chemistry 20: 227 (1996).Google Scholar

Seminal

  1. 1.
    N. Metropolis, A. W. Rosenblath, M. W. Rosenblath, A. H. Teller, and E. J. Teller, “The Monte Carlo Method,” J. Chem. Phys. 21: 1087 (1953).CrossRefGoogle Scholar
  2. 2.
    J. O’M. Bockris, A. Pilla, and J. L. Barton, “Change of Volume in the Fusion of Salts,” J. Phys. Chem. 64: 507 (1960).Google Scholar
  3. 3.
    M. P. Tosi and G. Fermi, “Computer Simulation Methods for Liquid Salts,” J. Phys. Chem. Solids 25: 31 (1964).CrossRefGoogle Scholar
  4. 4.
    V. Woodcock and K. Singer, “Computer Simulation for Liquid KCI,” Trans. Faraday Soc. 67: 12(1971).CrossRefGoogle Scholar

Reviews

  1. 1.
    M. P. Allen and D. Tilderley, Computer Simulation of Liquids, Clarendon Press, Oxford (1986).Google Scholar
  2. 2.
    J. E. Enderby, in The Structure of Molten Salts, G. Mamantov and R. Marassi, eds., NATO ASI Science Series, Series C 202: 2 (1988).Google Scholar

Papers

  1. 1.
    H. T. J. Reijer and W. Van der Lugt, Phys. Rev. B 42: 3395 (1990).Google Scholar
  2. 2.
    R. L. McGreevy and L. Pusztai, Proc. Roy. Soc. Lond. A430: 241 (1990).Google Scholar
  3. 3.
    M. L. Saboungi, D. L. Price, C. Scamehorn, and M. Tosi, Europhys. Lett. 15: 281 (1991).Google Scholar
  4. 4.
    Z. Acadeniz and M. P. Tosi, Proc. Roy. Soc. Lond. A437: 75 (1992).Google Scholar
  5. 5.
    S. Itoh, I. Okada, and K. Takahashi, Electrochemical Society, Molten Salts, 92-16: 88 (1992).Google Scholar
  6. 6.
    L. A. Curtiss, Electrochemical Society, Molten Salts, 93-9: 30 (1993).Google Scholar

Seminal

  1. 1.
    R. Fürth, “On the Theory of the Liquid State, I. The Statistical Treatment of the Thermodynamics of Liquids by the Theory of Holes,” Proc. Cambridge Phil. Soc. 37: 252 (1941).Google Scholar
  2. 2.
    R. Fürth, “On the Theory of the Liquid State, II. The Hole Theory of the Viscous Flow of Liquids,” Proc. Cambridge Phil. Soc. 37: 281 (1941).Google Scholar
  3. 3.
    M. H. Cohen and D. Turnbull, “Molecular Transport in Liquids and Glasses,” J. Chem. Phys. 31: 1164(1959).CrossRefGoogle Scholar
  4. 4.
    A. F. M. Barton and R. J. Speedy, “Simultaneous Conductance and Volume Measurements on Molten Salts at High Pressure,” J. Chem. Soc. Faraday Trans. 71: 506 (1974).Google Scholar

Reviews

  1. 1.
    C. A. Angell, “Transport and Relaxation Processes in Molten Salts,” NATO ASI Series C 202: 123 (1987).Google Scholar
  2. 2.
    G. Mamantov, C. Hussey, and R. Marassi, eds., An Introduction to the Electrochemistry of Molten Salts, Wiley, New York (1991).Google Scholar

Papers

  1. 1.
    Y. Shirakawa, S. Tamaki, M. Saito, H. Masatoshi, and S. Harab, J. Non-Cryst. Solids 117: 638 (1990).CrossRefGoogle Scholar
  2. 2.
    W. Freyland, J. Non-Cryst Solids 117: 613 (1990).CrossRefGoogle Scholar
  3. 3.
    R. L. McGreevy, Nuovo Cimento 12D(4–5): 685 (1990).Google Scholar
  4. 4.
    T. Nakamura and M. Itoh, J. Electrochem. Soc 137: 1166(1990).Google Scholar
  5. 5.
    M. L. Saboungi and D. L. Price, in Proc. Int. Symp. Molten Salts, Electrochemical Society, p. 8 (1990).Google Scholar
  6. 6.
    M. Abraham and I. Zloges, J. Am Chem. Soc. 113: 8583 (1991).Google Scholar
  7. 7.
    M. Noel, R. Allendoerfer, and R. A. Osteryoung, J. Phys. Chem. 96: 239 (1992).Google Scholar
  8. 8.
    R. J. Speedy, F. X. Prielmeier, T. Vardag, E. W. Lang, and H. D. Ludemann, J. Electrochem. Soc. 139: 2128 (1992).Google Scholar
  9. 9.
    C. A. Angell, C. Alba, A. Arzimanoglou, and R. Bohmer, AIP Proc. 256: 3 (1992).Google Scholar
  10. 10.
    S. Deki, H. Twabuki, A. Kacinami, and Y. Kanagi, Proc. Electrochem. Soc. 93–9: 252 (1993).Google Scholar
  11. 11.
    S. Itoh, Y. Hiwatari, and H. Miwagawa, J. Non-Cryst. Solids 156: 159 (1993).CrossRefGoogle Scholar
  12. 12.
    C. A. Angell, C. Lia, and E Sanchez, Nature 362: 137 (1993).CrossRefGoogle Scholar
  13. 13.
    C. A. Angell, P. H. Poole, and J. Shao, Nuovo Cimento 16: 993 (1994).Google Scholar
  14. 14.
    C. A. Angell, Proc. Natl. Acad. Sci. U.S.A. 92: 6675 (1995).Google Scholar
  15. 15.
    C. A. Angell, Science 267: 1924 (1995).Google Scholar
  16. 16.
    M. G. McClin and C. A. Angell, J. Phys. Chem. 100: 1181 (1996).Google Scholar

Seminal

  1. 1.
    W. Klemm and W. Biltz, “Distribution of the Property of Ionic Conductance among Molten Salts on Liquid Halides in the Periodic Table,” J. Inorg. Chem. 152: 255 (1926).Google Scholar
  2. 2.
    F. R. Duke, R. W. Laity, and B. Owens, “Transport Numbers in Fused Salts,” J. Electrochem. Soc. 104: 299(1957).Google Scholar
  3. 3.
    A. Borucka, J. O’M. Bockris, and J. A. Kitchener, “The Nernst-Einstein Equation in Molten Salts,” Proc. Roy. Soc. Lond. A241: 554 (1957).Google Scholar
  4. 4.
    G. J. Janz, C. Solomons, and H. J. Gardner, “Diffusion and Transport in Molten Salts,” Chem. Rev. 58: 241 (1958).CrossRefGoogle Scholar
  5. 5.
    L. Nanis and J. O’M. Bockris, “Self-Diffusion: Heats of Activation as a Function of Melting Temperature,” J. Phys. Chem. 67: 2865 (1963).Google Scholar
  6. 6.
    H. Bloom, The Chemistry of Molten Salts, W. A. Benjamin, New York (1967).Google Scholar

Reviews

  1. 1.
    C. L. Hussey, “Transport in and Transport Numbers in Molten Salts,” in Molten Salt Chemistry, C. Mamantov and R. Marassi, eds., NATO ASI Series C 202: 141 (1987).Google Scholar
  2. 2.
    C. A. Angell, “Transport and Relaxation Processes in Molten Salts,” in Molten Salt Chemistry, G. Mamantov and R. Marassi, eds., NATO ASI Series C202: 123 (1987).Google Scholar
  3. 3.
    S. Smedley, Interpretation of Ionic Conductivity in Liquids, Plenum Press, New York (1990).Google Scholar

Papers

  1. 1.
    S. I. Vavilov, J. Non-Cryst. Solids 123: 34 (1990).Google Scholar
  2. 2.
    D. R. Chang, Langmuir 66: 11332 (1990).Google Scholar
  3. 3.
    Y. Shirakawa and S. Tamaki, J. Non-Cryst. Solids 117: 638 (1990).CrossRefGoogle Scholar
  4. 4.
    D. G. Leaist, Electrochim. Acta 36: 309 (1991).CrossRefGoogle Scholar
  5. 5.
    K. Igarashi, J. Electrochem. Soc. 138: 3588 (1991).Google Scholar
  6. 6.
    H. Rajabu, S. K. Ratke, and O. T. Furland, Proc. Electrochem. Soc. 16: 595 (1992).Google Scholar
  7. 7.
    F. Lanlelme, A. Barhoun, and J. Chavelet, J. Electrochem. Soc. 140: 324 (1993).Google Scholar
  8. 8.
    M. Poupait, C. S. Valesquez, and K. Hasseb, J. Am. Chem. Soc. 116: 1165 (1994).Google Scholar
  9. 9.
    W. Wang and John Newman, J. Electrochem. Soc. 142: 761 (1995).Google Scholar
  10. 10.
    C. Larive, M. Lin, and B. J. Piersma, J. Phys. Chem. 99: 12409 (1995).CrossRefGoogle Scholar
  11. 11.
    V. A. Payne, J. H. Xu, M. Fursyth, M. A. Ratner, D. F. Shriver, and S. W. Deleuw, Electrochim. Acta 40: 2087 (1995).CrossRefGoogle Scholar
  12. 12.
    C. Cametti, J. Phys. Chem. 100: 7148 (1996).Google Scholar

Seminal

  1. 1.
    H. Eyring, “A Hole Theory of Liquids,” J. Chem. Phys. 4: 283 (1936).Google Scholar
  2. 2.
    R. Fürth, “Transport Theory and Holes in Liquid,” Proc. Cambridge Phil. Soc. 252: 276, 281 (1941).Google Scholar
  3. 3.
    M. Nagarajan, L. Nanis, and J. O’M. Bockris, “Diffusion of Sodium 22 in Molten Sodium Nitrate,” J. Phys. Chem. 68: 2726 (1964).Google Scholar
  4. 4.
    S. R. Richards and J. O’M. Bockris, “Relation of Heats of Activation to the Melting Point in All Non-Associated Liquids,” J. Phys. Chem. 69: 671 (1965).Google Scholar

Papers

  1. 1.
    Y. Tada, S. Hiraoka, and Y. Katsumura, Ind. Eng. Chem. Res. 31: 2010 (1992).CrossRefGoogle Scholar
  2. 2.
    C. K. Larive, M. F. Lin, B. J. Piersma, and W. R. Carper, J. Phys. Chem. 99:12409 (1995).CrossRefGoogle Scholar
  3. 3.
    M. Watanabe, S. Yamada, and N. Ogata, Electrochim. Acta 40: 2285 (1995).Google Scholar
  4. 4.
    M. Ma and K. E. Johnson, Can. J. Chem. 73: 593 (1995).Google Scholar
  5. 5.
    M. Abraham, M. C. Abraham, and I. Ziogas, Electrochim. Acta 41: 903 (1996).CrossRefGoogle Scholar

Seminal

  1. 1.
    D. DeFord and D. N. Hume, “The Determination of Consecutive Formation Constants of Complex Ions from Polarographic Data,” J. Am. Chem. Sot: 73: 5321 (1951).Google Scholar
  2. 2.
    D. Inman and J. O’M. Bockris, “Complex Ions in Molten Salts: A Galvanostatic Study,” Trans. Faraday Soc. 57: 2308 (1961).CrossRefGoogle Scholar
  3. 3.
    S. Srinivasan, D. Inman, A. K. N. Reddy, and J. O’M. Bockris, “The Lifetime of Complex Ions in Ionic Liquids: an Electrode Kinetic Study,” J. Electroanal. Chem. 5: 476 (1963).Google Scholar
  4. 4.
    M. Tanaka, K. Balasubramanyam, and J. O’M. Bockris, “Raman Spectrum of the CdCl2-KC1 System,” Electrochim. Acta 8: 621 (1963).CrossRefGoogle Scholar
  5. 5.
    C. Solomons, J. Clarke, and J. O’M. Bockris, “Identification of the Complex Ions in Liquid Cryolite,” J. Chem. Phys. 49: 445 (1968).CrossRefGoogle Scholar

Review

  1. 1.
    J. F. Stebbins, “Nuclear Magnetic Resonance at High Temperatures,” Chem. Rev. 91:1353 (1991).CrossRefGoogle Scholar

Papers

  1. 1.
    C. L. Hussey, I-Wen Sun, S. Strubinger, and P. A. Bernard, J. Electrochem. Soc. 137: 2515 (1990).Google Scholar
  2. 2.
    C. L. Hussey, I-Wen Sun, S. Strubiner, and P. A. Bernard, J. Electrochem. Soc. 137: 2515 (1990).Google Scholar
  3. 3.
    M. Blander, E. Bierwagen, K. G. Calkin, L. A. Curtiss, D. L. Price, and B. L. Saboungi, J. Chem. Phys. 97: 2733 (1992).CrossRefGoogle Scholar
  4. 4.
    S. Takahashi, M. L. Saboungi, R. J. Klinger, M. J. Chen, and J. W. Rathke, Electrochem. Soc. Proc. 92–16: 345 (1992).Google Scholar
  5. 5.
    E. A. Pavlatou and G. N. Papatheodorou, Electrochem. Soc. Proc. 92–16: 72 (1992).Google Scholar
  6. 6.
    D. L. Price, M. L. Saboungi, S. Hashimito, and S. C. Moss, Electrochem. Soc. Proc. 92–16: 14 (1992).Google Scholar
  7. 7.
    M. Oki, K. Fukushima, Y. Iwadata, and J. Mochinaga, Electrochemical Society, Molten Salts 93–9:9(1993).Google Scholar
  8. 8.
    D. L. Price, M. L. Saboungi, W. S. Howell, and M. P. Tosi, Electrochemical Society, Molten Salts 93–9: 1 (1993).Google Scholar
  9. 9.
    J. F. Stebbins, S. Sen, and A. M. George, J. Non-Cryst. Solids 193: 298 (1995).CrossRefGoogle Scholar
  10. 10.
    S. Das, G. M. Bejun, J. P. Young, and G. Mamantov, J. Raman Spectrosc. 26: 929 (1995).Google Scholar

Seminal

  1. 1.
    H. R. Bronstein and M. A. Bredig, “The Electrical Conductivity of Solutions of Alkali Metals in Their Molten Halides,” J. Am. Chem. Soc. 82: 2077 (1958).Google Scholar
  2. 2.
    T. Emi and J. O’M. Bockris, “Electronic Conductivity in Ionic Liquids,” Electrochim. Acta 16: 2081(1971).CrossRefGoogle Scholar

Papers

  1. 1.
    G. Malescio, Mol. Phys. 69: 895 (1990).Google Scholar
  2. 2.
    G. Malescio, Nuovo Cimento 13D: 1031 (1991).Google Scholar
  3. 3.
    G. M, Harberg and J. J. Egan, Proc. Electrochem. Soc. 16: 22 (1992).Google Scholar
  4. 4.
    J. Lin and J. C. Poignet, J. Appl. Electrochem. 22: 1111 (1992).CrossRefGoogle Scholar
  5. 5.
    J. Bouteillon, M. Jaferian, J. C. Poignet, and A. Reydat, J. Electrochem. Soc. 139: 1 (1992).Google Scholar
  6. 6.
    D. Naltland, T. Reuj, and W. Freyland, J. Chem. Phys. 98: 4429 (1993).Google Scholar
  7. 7.
    J. C. Gabriel, J. Bouteillon, and J. C. Poignet, J. Electrochem. Soc. 141: 2286 (1994).Google Scholar
  8. 8.
    L. Arurault, J. Bouteillon, and J. C. Poignet, J. Electrochem. Soc. 142: 16 (1994).Google Scholar

Seminal

  1. 1.
    J. E. Gordon, Application of Fused Salts in Organic Chemistry, in Techniques and Methods of Organic Chemistry, Vol. 1, Marcel Dekker, New York (1969).Google Scholar
  2. 2.
    L. Lessing, “Sewage Disposal in Molten Salts,” Fortune 138 (July 1973).Google Scholar
  3. 3.
    J. W. Tomlinson, “High-Temperature Electrolytes,” in Electrochemistry: The Past Thirty and the Next Thirty Years, H. Bloom and F. Gutmann, eds., Plenum Press, New York (1977).Google Scholar

Papers

  1. 1.
    L. Kaba, D. Hitchens, and J. O’M. Bockris, J. Electrochem. Soc. 137: 5 (1990).Google Scholar
  2. 2.
    A. Berrukov, O. Deryabina, L. Maharinsky, N. Halterinsky, and A. Berlin, Int. J. Polym. Mater. 14: 101 (1990).Google Scholar
  3. 3.
    E. Sada, H. Kumazawa, and M. Kudsy, Ind. Ghem. Res. 31: 612 (1992).Google Scholar
  4. 4.
    U. Gat, J. R. Engel, and H. L. Dodds, Nuc. Technol. 100: 390 (1992).Google Scholar
  5. 5.
    C. Tennakoon, R. Bhardwaj, and J. O’M. Bockris, J. Appl. Electrochem. 26: 18 (1996).CrossRefGoogle Scholar

Seminal

  1. 1.
    F. Hurley and J. P. Wier, “Electrodeposition of Metals from Fused Quaternary Ammonium Salts,” J. Electrochem. Soc. 98: 203 (1951).Google Scholar
  2. 2.
    H. L. Chum, V. R. Koch, L. L. Miller, and R. A. Osteryoung, “An Electrochemical Scrutinity of Organometallic Iron Complexes and Hexamethylbenzene in a Room Temperature Molten Salt,” J. Am. Chem. Soc. 97: 3265 (1975).CrossRefGoogle Scholar

Review

  1. 1.
    R. A. Osteryoung, “Organic Chloraluminates Ambient Temperature,” in Molten Salts, G. Mamantov, ed, NATO ASI Series C 202: 329 (1987).Google Scholar

Papers

  1. 1.
    J. Jeng, R. D. Allendorfer, and R. A. Osteryoung, J. Phys. Chem. 96: 3531 (1992).Google Scholar
  2. 2.
    J. L. E. Campbell and K. E. Johnson, Proc. Electrochem. Soc. 92–16: 317 (1992).Google Scholar
  3. 3.
    P. C. Truelove and R. A. Osteryoung, Proc. Electrochem. Soc. 92–16: 303 (1992).Google Scholar
  4. 4.
    P. C. Truelove and R. T. Carlin, Proc. Electrochem. Soc. 93–9: 62 (1993).Google Scholar
  5. 5.
    R. T. Carlin and T. Sullivan, J. Electrochem. Soc. 139:144(1992).Google Scholar
  6. 6.
    T. L. Riechel and J. S. Wilkes, Proc. Electrochem. Soc. 92–16: 351 (1992).Google Scholar
  7. 7.
    T. L. Riechel and J. S. Wilkes, J. Electrochem. Soc. 140: 3104 (1993).Google Scholar
  8. 8.
    R. A. Mantz, R. C. Truelove, K. T. Carlin, and R. A. Osteryoung, Inorg. Chem. 34: 3846 (1995).CrossRefGoogle Scholar
  9. 9.
    W. J. Gau and I. W. Sun, J. Electrochem. Soc. 143: 914 (1996).Google Scholar
  10. 10.
    E. Hondrogiannis, J. Electrochem. Soc. 142:1758 (1995).Google Scholar
  11. 11.
    W. R. Carper, Inorg. Chim. Acta 238: 115 (1995).Google Scholar
  12. 12.
    K. E. Johnson, Can. J. Chem. 73: 593 (1995).Google Scholar

Seminal

  1. 1.
    W. Zachariasen, “Chain and Sheet Structure of Glasses,” J. Am. Chem. Soc. 54: 3841 (1932).CrossRefGoogle Scholar
  2. 2.
    J. O’M. Bockris and D. C. Lowe, “Viscosity and the Structure of Liquid Silicates,” Proc. Roy. Soc. Lond. A226: 423 (1954).Google Scholar
  3. 3.
    J. O’M. Bockris, J. D. MacKenzie, and J. A. Kitchener, “Viscous Flow in Silica and Binary Liquid Silicates,” Trans. Faraday Soc. 51: 1734 (1955).Google Scholar
  4. 4.
    J. W. Tomlinson, J. L. White, and J. O’M. Bockris, “The Structure of the Liquid Silicates; Partial Molar Volumes and Expansivities,” Trans. Faraday Soc. 52: 299 (1956).Google Scholar

Review

  1. 1.
    B. O. Mysen, Structure and Properties of the Silicate Melts, Elsevier, New York (1988).Google Scholar

Papers

  1. 1.
    J. E. Stebbins and I. Farnan, Science 255: 586 (1992).Google Scholar
  2. 2.
    B. T. Poe, P. E. McMillan, C. A. Angell, and R. K. Sato, Chem. Geol. 96: 333 (1992).CrossRefGoogle Scholar
  3. 3.
    Y. Kawasita, J. Dong, T. Tsuzuki, Y. Ohmassi, M. Yao, H. Endo, H. Hoshimo, and M. Inni, J. Non-Cryst. Solids 156: 756 (1993).Google Scholar
  4. 4.
    C. Scamehorn and C. A. Angell, Geochim. Cosmochim. Acta 55: 721 (1991).CrossRefGoogle Scholar
  5. 5.
    X. Xui, J. F. Stebbins, M. Kenza, and R. G. Tronnes, Science 245: 962 (1996).Google Scholar

Copyright information

© Kluwer Academic Publishers 2002

Personalised recommendations