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1887
Volume 26, Issue 2
  • ISSN: 0032-1400

Abstract

This article completes the review of the relationship between equilibrium pressure and composition, which was started in the first part of the paper, before going on to consider some other aspects of the hydrogen-palladium system.

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1982-01-01
2024-05-04
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References

  1. Flanagan T. B., Bowerman B. S., and Biehl G. E. 1980, Scr. Metall., 14, 443 [Google Scholar]
  2. Clewley J. D., Lynch J. F., and Flanagan T. B. 1977, J. Chem. Soc., Faraday Trans. I, 73, (3), 494 [Google Scholar]
  3. Dobson J. V., Dagless M. N., and Thirsk H. R. 1972, J. Chem. Soc., Faraday Trans. I, 68, (4), 749, 764 [Google Scholar]
  4. Dobson J. V. 1981, Platinum Metals Rev., 25, (2), 72 [Google Scholar]
  5. Sicking G. 1972, Ber. Bunsenges. Phys. Chem., 76, (8), 790 [Google Scholar]
  6. Wicke E., Brodowsky H., and Züchner H. op. cit., ref. 17, 29, p. 73
  7. Brodowsky H., and Repenning D. 1979, Z. Physik. Chem. (Frankfurt am Main), 114, 141 [Google Scholar]
  8. Sicking G. 1974, op. cit., 93, 53
  9. Flanagan T. B., Oates W. A., and Bau R. 1978; “Transition Metal Hydrides”, Advances in Chemistry Series No. 167, Ed. Am. Chem. Soc., p. 283 [Google Scholar]
  10. Brodowsky H., and Husemann H. 1980, Suppl. Trans. Jpn. Inst. Met., 21, 365 [Google Scholar]
  11. Mizutani U., Massalski T. B., and Bevk J. 1976, J. Phys. F, 6, (1), 1 [Google Scholar]
  12. Picard C., Kleppa O. J., and Boureau G. 1979, J. Chem. Phys., 70, (6), 2710 [Google Scholar]
  13. Lynch J. F., and Flanagan T. B. 1973, J. Phys. Chem., 77, (22), 2628; [Google Scholar]
  14. J. Chem. Soc., Faraday Trans. I, 1974, 70, (5), 814 [Google Scholar]
  15. McFall W. D., and Lewis F. A. 1975, Fiz. Nizk. Temp. (Kiev), 1, (5), 674 [Google Scholar]
  16. Wicke E., and Nernst G. H. 1964, Ber. Bunsenges. Phys. Chem., 68, (3), 224 [Google Scholar]
  17. Skośkiewicz T. 1971, Phys. Status Solidi A, 6, (1), 29 [Google Scholar]
  18. Wiśniewski R., and Rostocki A. J. 1971, Phys. Rev. B, 3, (2), 251; 4, (12), 4330 [Google Scholar]
  19. Baranowski B., and Wiśniewski R. 1969, Phys. Status Solidi, 35, (2), 593 [Google Scholar]
  20. Skośkiewicz T. 1972, Phys. Status Solidi A, 11, (2), K 123 [Google Scholar]
  21. Nelin G., and Sköld K. 1975, J. Phys. Chem. Solids, 36, (11), 1175; [Google Scholar]
  22. Magerl A., Stump N., Wipf H., and Alefeld G. also ibid., 1977, 38, (7), 683
  23. Lewis F. A. 1961, Naturwissenschaften, 48, (10), 402; [Google Scholar]
  24. Nature Phys. Sci., 1973, 242, (115), 45 [Google Scholar]
  25. Burch R. 1970, Trans. Faraday Soc., 66, (3), 736, 749 [Google Scholar]
  26. Burch R., and Lewis F. A. 1971, Platinum Metals Rev., 15, (1), 21; [Google Scholar]
  27. Annu. Rep. Chem. Soc., 1970, 67, 231; [Google Scholar]
  28. Bucur R. V., and Crisan M. see also J. Phys. Chem. Solids, 1967, 28, (6), 995; [Google Scholar]
  29. Lupu D., and Bucur R. V. ibid., 1977, 38, (3), 387;
  30. Khan M. A., Parlebas J. C., and Demangeat C. J. Less-Common Met., 1981, 77, (1), p. 1 [Google Scholar]
  31. Owen E. A., and Williams E. St. J. 1944, Proc. Phys. Soc., 56, (1), 52 [Google Scholar]
  32. Lundin C. E., Lynch F. E., Andresen A. F., and Maeland A. J. 1978, “Hydrides for Energy Storage”, Ed. New York, Pergamon, p. 395 [Google Scholar]
  33. Dietrich S., and Wagner H. 1979, Z. Phys. B, 36, (2), 121 [Google Scholar]
  34. Yurichev I. A. 1980, Phys. Status Solidi A, 57, (1), 355 [Google Scholar]
  35. Zabel H., and Peisl H. 1979, Phys. Rev. Lett., 42, (8), 511; [Google Scholar]
  36. Suppl. Trans. Japan Inst. Met., 1980, 21, 81 [Google Scholar]
  37. Lewis F. A., Mazzolai F. M., and Obermann A. 1982, Int. J. Hydrogen Energy, 7, (2), 183 [Google Scholar]
  38. Levine P. L., and Weale K. E. 1960, Trans. Faraday Soc., 56, 357 [Google Scholar]
  39. Maeland A. J., and Gibb T. R. P. 1961, J. Phys. Chem., 65, (7), 1270 [Google Scholar]
  40. Aston J. G. 1966, op. cit., ref. 5, p. 14
  41. Schindler A. I. op. cit., ref. 5, p. 21
  42. Zepeda S., and Manchester F. D. 1971, J. Low. Temp. Phys., 4, (2), 127 [Google Scholar]
  43. Brand R. A., Georges-Gilbert H., and Lefaurain M. 1980, J. Phys. F, 10, L257 [Google Scholar]
  44. Manchester F. D. 1976, J. Less-Common Met., 49, (1, 2), 1; [Google Scholar]
  45. Bond R. A., and Ross D. K. see also J. Phys. F, in press [Google Scholar]
  46. King H. W., and Manchester F. D. 1978, op. cit., 8, (1), 15
  47. Anderson I. S., Carlile C. J., Ross D. K., and Wilson D. L. T. 1979, Z. Phys. Chem. (Frankfurt am Main), 115, (2), 165 [Google Scholar]
  48. Ellis T. E., Satterthwaite C. B., Mueller M. H., and Brun T. O. 1979, Phys. Rev. Lett., 42, (7), 456 [Google Scholar]
  49. Skośkiewicz T., and Baranowski B. 1968, Phys. Status Solidi, 30, (1), K33 [Google Scholar]
  50. Ho N. S., and Manchester F. D. 1968, Can. J. Phys., 46, (11), 1341 [Google Scholar]
  51. Haywood C. T., and Verdini L. 1968, op. cit., 46, (18), 2065
  52. Stritzker B. op. cit., ref. 17, 29, p. 243
  53. Ganguly B. N. 1975, Z. Phys. B, 22, (2), 127; op. cit., ref. 83, Paper 1D11. [Google Scholar]
  54. Papaconstantopoulos D. A., Economou E. N., Klein B. M., and Boyer L. L. 1979, Phys. Rev. B, 20, (1), 177 [Google Scholar]
  55. Baranowski B., Skośkiewicz T., and Szafrański A. W. 1975, op. cit., ref. 112, 1, (5), 616
  56. Marêché J. F., Rat J.-C., and Herold A. 1976, J. Chim. Phys. Phys.-Chim. Biol., 73, (1112), 983 [Google Scholar]
  57. Venema W. J., Feenstra R., Blom F., and Griessen R. 1979, Z. Physik, Chem. (Frankfurt am Main), 116, 125 [Google Scholar]
  58. Alekseeva O. K., Onishchuk V. A., Shantarovich V. P., Dekhtyar I. Ya., and Shevchenko V. I. 1979, Phys. Status Solidi B, 95, (2), K135 [Google Scholar]
  59. Gibb T. R. P. 1966, op. cit., ref. 5, p. 28
  60. Sholl C. A., and Smith P. V. 1979, Z. Phys. Chem. (Frankfurt am Main), 115, 239 [Google Scholar]
  61. Switendick A. C. 1979, op. cit., 117, 89;
  62. Suppl. Trans. Jpn. Inst. Met., 1980, 21, 57 [Google Scholar]
  63. Marêché J. F., Rat J.-C., and Herold A. 1979, Z. Phys. Chem. (Frankfurt am Main), 115, (2), 237 [Google Scholar]
  64. Gibb T. R. P., 1962, J. Inorg. Nucl. Chem., 24, 349, “Progress in Inorganic Chemistry”, Ed. and Cotton F. A. New York, Interscience, 1962, 3, 315 [Google Scholar]
  65. Flanagan T. B., Baranowski B., and Majchrzak S. 1971, J. Phys. Chem., 74, (24), 4299 [Google Scholar]
  66. Baranowski B., Majchrzak S., and Flanagan T. B. 1973, op. cit., 77, (1), 35
  67. Antonov W. E., Belash I. T., Degtzareva W. F., and Ponyatovskii E. G. 1978, Dokl. Akad. Nauk SSSR., 239, (2), 342 [Google Scholar]
  68. Conrad H., Ertl G., and Latta E. E. 1974, Surf. Sci., 41, (1), 435 [Google Scholar]
  69. Baranowski B., Majchrzak S., and Flanagan T. B. 1971, J. Phys. F, 1, (2), 258 [Google Scholar]
  70. Krause W., and Kahlenberg L. 1935, Trans. Electrochem. Soc., 68, 449; [Google Scholar]
  71. Goltsov V. A., Timofeyev N. I., and Machinka I. Yu. see also Fiz. Met. Metalloved., 1979, 46, (3), 502 [Google Scholar]
  72. Gillespie D. J., and Ehrlich A. C. 1979, Z. Phys. Chem. (Frankfurt am Main), 114, 175 [Google Scholar]
  73. Duggan B., Farr J. P. G., Kushner J. B., and Wise M. 1972, Nature, Phys. Sci., 236, (65), 73 [Google Scholar]
  74. Jameson H. C., Weatherley G. C., and Manchester F. D. 1976, J. Less-Common Met., 50, (1), 85; [Google Scholar]
  75. Ho E. T. C., Goldberg H. A., Weatherly G. C., and Manchester F. D. op. cit., ref. 83, Paper 2B3
  76. Sicking G. H., and Huber B. 1980, J. Less-Common Met., 74, (2), 457; [Google Scholar]
  77. Čermák J., Kufudakis A., and Redl V. Z. Phys. Chem. (Frankfurt am Main), 1979, 116, 9 [Google Scholar]
  78. Springer T. 1979, op. cit., 115, 141
  79. Ross D. K., Martin D. F., Oates W. A., and Baksh R. K. 1979, op. cit., 114, 221
  80. Schober H. R., and Lottner V. 1979, op. cit., 114, 203
  81. Wagner C. 1971, Acta Metall., 19, (8), 843 [Google Scholar]
  82. Alefeld G. 1972, Ber. Bunsenges. Phys. Chem., 76, (3/4), 355; [Google Scholar]
  83. ibid., 1972, 76, (8), 746
  84. Owen E. A., and Evans E. W. 1967, Brit. J. Appl. Phys., 18, 605; [Google Scholar]
  85. Boureau G., and Kleppa O. J. Scr. Metall., 1977, 11, (4), 327 [Google Scholar]
  86. Völkl J. 1972, Ber. Bunsenges. Phys. Chem., 76, (8), 797; [Google Scholar]
  87. Wipf H. J. Less-Common Met., 1976, 49, (1, 2), 291 [Google Scholar]
  88. Mazzolai F. M., Nuovo M., and Lewis F. A. 1975, Scr. Metall., 9, (6), 617 [Google Scholar]
  89. Völkl J., and Alefeld G. 1979, Z. Phys. Chem. (Frankfurt am Main), 114, 123 [Google Scholar]
  90. Mazzolai F. M., and Züchner H. 1981, op. cit., 124, 59
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