Journal of Solid State Electrochemistry

, Volume 10, Issue 8, pp 517–537 | Cite as

Thermodynamics, defect structure, and charge transfer in doped lanthanum cobaltites: an overview

Review

Abstract

This work, based on the experimental and theoretical research performed by the authors during last three decades, presents an overview of phase and defect thermodynamics, electronic transport properties, and the stability of cobaltite-based mixed conductors that are promising for electrode and membrane applications. Attention is centered on (1) the phase equilibria in La–Me–Co–T–O (where Me=Ca, Sr, Ba and T=Mn, Fe, Ni, Cu) systems and crystal structure of the complex oxides formed in these systems, thermodynamic stability and the homogeneity ranges of solid solutions; (2) the defect structure of the oxygen-deficient undoped and acceptor- or/and donor-doped lanthanum cobaltites; and (3) their conductivity and Seebeck coefficient as functions of temperature and oxygen partial pressure. The relationships between the peculiarities of the defect structure and the transport properties of the lanthanum cobaltites with different dopant natures are analyzed.

Keywords

Cobaltite Mixed conductor Defect structure Defect thermodynamics Electrode Membrane 

Notes

Acknowledgements

This work was supported by the Russian Foundation for Basic Research [grant numbers 04-03-32118, 05-03-32477, 04-03-96136 (Ural) and 04-03-32142], the Civilian Research & Development Foundation, and the Ministry of Education and Science of Russian Federation (project EK-005-XI).

References

  1. 1.
    Janecek JJ, Wirtz GP (1978) J Am Chem Soc 61:242Google Scholar
  2. 2.
    Seppanen M, Kyto M, Taskinen P (1979) Scand J Metal 8:199Google Scholar
  3. 3.
    Petrov AN, Cherepanov VA, Novitsky EM, Zhukovsky VM (1984) Russ J Phys Chem 58:1618Google Scholar
  4. 4.
    Petrov AN, Cherepanov VA, Zuyev AYu, Zhukovsky VM (1988) J Solid State Chem 75:1CrossRefGoogle Scholar
  5. 5.
    Kitayama K (1997) J Solid State Chem 131:18CrossRefGoogle Scholar
  6. 6.
    Borlera ML, Abbattista F (1983) J Less-Common Met 92:55CrossRefGoogle Scholar
  7. 7.
    Nakamura T, Petzow G, Gauckel LJ (1979) Mater Res Bull 14:649CrossRefGoogle Scholar
  8. 8.
    Kamegashira N, Miyazaki Y, Hiyoshi Y (1984) Mater Lett 2:194CrossRefGoogle Scholar
  9. 9.
    Kamegashira N, Miyazaki Y (1984) Mater Chem Phys 11:187CrossRefGoogle Scholar
  10. 10.
    Tretyakov YuD, Kaul AR, Portnoy VK (1977) High Temp Sci 9:61Google Scholar
  11. 11.
    Cherepanov VA, Barkhatova LYu, Petrov AN (1994) J Phys Chem Solids 55:229CrossRefGoogle Scholar
  12. 12.
    Cherepanov VA, Barkhatova LYu, Petrov AN, Voronin VI (1995) In: Dokiya M, Yamamoto O, Tagawa H, Singhal SC (eds) Solid oxide fuel cells IV, PV 95-1. The Electrochemical Society, Pennington, pp 434Google Scholar
  13. 13.
    Cherepanov VA, Gavrilova LYa, Barkhatova LYu, Voronin VI, Trifonova MV, Bukhner OA (1998) Ionics 4:309CrossRefGoogle Scholar
  14. 14.
    Cherepanov VA, Gavrilova LYa, Filonova EA, Trifonova MV, Voronin VI (1999) Mater Res Bull 34:983CrossRefGoogle Scholar
  15. 15.
    Gavrilova LYa, Cherepanov VA, Surova TV, Baimistruk VA, Voronin VI (2002) Russ J Phys Chem 76:150Google Scholar
  16. 16.
    Gavrilova LYa, Cherepanov VA (1999) In: Singhal SC, Dokiya M (eds) Solid oxide fuel cells VI, PV 99-17. The Electrochemical Society Proceedings Series. The Electrochemical Society, Pennington, pp 404Google Scholar
  17. 17.
    Cherepanov VA, Gavrilova LYa, Petrov AN, Zuev AYu (2002) Z Anorg Allg Chem 628:2140CrossRefGoogle Scholar
  18. 18.
    Zinkevich M, Aldinger F (2004) J Alloys Compd 375:147CrossRefGoogle Scholar
  19. 19.
    Zhang Z, Greenblatt M, Goodenough JB (1994) J Solid State Chem 108:402CrossRefGoogle Scholar
  20. 20.
    Bannikov DO, Cherepanov VA (2002) Z Anorg Allg Chem 628:2180CrossRefGoogle Scholar
  21. 21.
    Cherepanov VA, Petrov AN, Grimova LYu, Novitsky EM (1983) Russ J Phys Chem 57:859 (in Russian)Google Scholar
  22. 22.
    Voronin VI, Berger IF, Cherepanov VA, Gavrilova LYa, Petrov AN, Ancharov AI, Tolochko BP, Nikitenko SG (2001) Nucl Instrum Methods Phys Res A470:202Google Scholar
  23. 23.
    Petrov AN, Zuev AYu, Cherepanov VA, Kropanev AYu (1987) Izv An SSSR Neorgan Mater 23:949 (in Russian)Google Scholar
  24. 24.
    Skakle JMS, West AR (1994) J Am Ceram Soc 77:2199CrossRefGoogle Scholar
  25. 25.
    Demazeau G, Marbeuf A, Pouchard M, Hagenmuller P (1971) J Solid State Chem 3:582CrossRefGoogle Scholar
  26. 26.
    Gavrilova LYa, Proskurnina NV, Cherepanov VA, Voronin VI (2001) In: Yokokawa H, Singhal SC (eds) Solid oxide fuel cells VII, PV 2001-16. The Electrochemical Society Proceedings Series. The Electrochemical Society, Pennington, pp 458–465Google Scholar
  27. 27.
    Gopalakrishnan J, Colsmann G, Reuter B (1976) Z Anorg Allg Chem 424:155CrossRefGoogle Scholar
  28. 28.
    Sawada H, Hamada N, Terakura K (1995) J Phys Chem Solids 56:1755CrossRefGoogle Scholar
  29. 29.
    Tikhonova IL, Bakhtin AV, Zuev AYu, Petrov AN (1999) Russ J Phys Chem 73:365Google Scholar
  30. 30.
    Filonova EA, Cherepanov VA, Voronin VI (1998) Russ J Phys Chem 72:1706Google Scholar
  31. 31.
    Proskurnina NV, Shabunina OS, Cherepanov VA (2002) Z Anorg Allg Chem 628:2164CrossRefGoogle Scholar
  32. 32.
    Proskurnina NV, Cherepanov VA, Golynets OS, Voronin VI (2004) Inorg Mater 40:955CrossRefGoogle Scholar
  33. 33.
    Cherepanov VA, Filonova EA, Voronin VI, Berger IF, Barkhatova LYu (1999) Mater Res Bull 34:1481CrossRefGoogle Scholar
  34. 34.
    Cherepanov VA, Filonova EA, Voronin VI, Berger IF (2000) J Solid State Chem 153:205CrossRefGoogle Scholar
  35. 35.
    Cherepanov VA, Barkhatova LYu, Voronin VI (1997) J Solid State Chem 134:38CrossRefGoogle Scholar
  36. 36.
    Aksenova TV, Gavrilova LYa, Cherepanov VA (2004) Inorg Mater 40:1336CrossRefGoogle Scholar
  37. 37.
    Gavrilova LYa, Teslenko YaV, Bannikch LA, Aksenova TV, Cherepanov VA (2002) J Alloys Compd 344:28CrossRefGoogle Scholar
  38. 38.
    Bobina MA, Yakovleva NA, Gavrilova LYa, Cherepanov VA (2004) Russ J Phys Chem 78:1340Google Scholar
  39. 39.
    Jonker GH (1969) Philips Res Rep 24:1Google Scholar
  40. 40.
    Zuev AYu, Petrov AN, Pankov DV (1999) In: Singhal SC, Dokia M (eds) Solid oxide fuel cells VI, PV 99-17. The Electrochemical Society Proceedings Series. The Electrochemical Society, Pennington, pp 424–431Google Scholar
  41. 41.
    Yasumoto K, Inagaki Y, Shiono M, Dokiya M (2002) Solid State Ion 148:545CrossRefGoogle Scholar
  42. 42.
    Matsuura T, Tabuchi J, Mizusaki J, Yamauchi S, Fueki K (1988) J Phys Chem Solids 49:1403CrossRefGoogle Scholar
  43. 43.
    Mizusaki J, Mima Y, Yamauchi S, Fueki K, Tagawa H (1989) J Solid State Chem 80:102CrossRefGoogle Scholar
  44. 44.
    Petrov AN, Cherepanov VA, Kononchuk OF, Gavrilova LYa (1990) J Solid State Chem 87:69CrossRefGoogle Scholar
  45. 45.
    Petrov AN, Kononchuk OF, Andreev AV, Cherepanov VA, Kofstad P (1995) Solid State Ion 80:189CrossRefGoogle Scholar
  46. 46.
    Lankhorst MHR, Bouwmeester HJM, Verweij H (1996) Phys Rev Lett 77:2989CrossRefGoogle Scholar
  47. 47.
    Lankhorst MHR, Bouwmeester HJM, Verweij H (1997) J Solid State Chem 133:555CrossRefGoogle Scholar
  48. 48.
    Lankhorst MHR, Bouwmeester HJM, Verweij H (1997) Solid State Ion 96:21CrossRefGoogle Scholar
  49. 49.
    Patrakeev MV, Leonidov IA, Mitberg EB, Lakhtin AA, Vasiliev VG, Kozhevnikov VL, Poeppelmeier KR (1999) Ionics 5:444CrossRefGoogle Scholar
  50. 50.
    Kozhevnikov VL, Leonidov IA, Mitberg EB, Patrakeev MV, Petrov AN, Poeppelmeier KR (2003) J Solid State Chem 172:296CrossRefGoogle Scholar
  51. 51.
    Petrov AN, Zuev AYu, Pankov DV, Bujanova ES (2004) Russ J Phys Chem 78:220Google Scholar
  52. 52.
    Petrov AN, Zuev AYu, Pankov DV (2004) Russ J Phys Chem 78:1616Google Scholar
  53. 53.
    Seppanen M, Kyto M, Taskinen P (1980) Scand J Metal 9:3Google Scholar
  54. 54.
    Petrov AN, Cherepanov VA, Zuev AYu (1987) Russ J Phys Chem 61:630Google Scholar
  55. 55.
    Zuev A, Singheiser L, Hilpert K (2005) Solid State Ion 176:417CrossRefGoogle Scholar
  56. 56.
    Raccah PM, Goodenough JB (1967) Phys Rev 155:932CrossRefGoogle Scholar
  57. 57.
    Mizusaki J, Tabuchi J, Matsuura T, Yamauchi S, Fueki K (1989) J Electrochem Soc 2082:136Google Scholar
  58. 58.
    Sehlin SR, Anderson HU, Sparlin DM (1995) Phys Rev B52:11681Google Scholar
  59. 59.
    Kharton VV, Naumovich EN, Vecher AA, Nikolaev AV (1995) J Solid State Chem 120:128CrossRefGoogle Scholar
  60. 60.
    Mitberg EB, Patrakeev MV, Lakhtin AA, Leonidov IA, Kozhevnicov VL, Poeppelmeier KR (2000) Solid State Ion 130:325CrossRefGoogle Scholar
  61. 61.
    Yaremchenko AA, Kharton VV, Viskup AP, Naumovich EN, Tikhonovich VN, Lapchuk NM (1999) Solid State Ion 120:65CrossRefGoogle Scholar
  62. 62.
    Kharton VV, Naumovich EN, Kovalevsky AV, Viskup AP, Figueiredo FM, Bashmakov IA, Marques FMB (2000) Solid State Ion 138:135CrossRefGoogle Scholar
  63. 63.
    Petrov AN, Zuev AYu, Vylkov AI (2005) Russ J Phys Chem 79:220Google Scholar
  64. 64.
    Tietz F, Schmidt A, Zahid M (2004) J Solid State Chem 177:745CrossRefGoogle Scholar
  65. 65.
    Petric A, Huang P, Tietz F (2000) Solid State Ion 135:719CrossRefGoogle Scholar
  66. 66.
    Thornton G, Owen IW, Diakun GP (1991) J Phys Condens Mater 3:417CrossRefGoogle Scholar
  67. 67.
    Senaris-Rodriguez MA, Goodenough JB (1995) J Solid State Chem 116:224CrossRefGoogle Scholar
  68. 68.
    Heikes RR (1961) Thermoelecticity science and engineering. Interscience, New YorkGoogle Scholar
  69. 69.
    Chen CH, Kruidhoff H, Bouwmeester HJM (1997) J Appl Electrochem 27:71CrossRefGoogle Scholar
  70. 70.
    Petrov AN, Voronin VI, Norby T, Kofstad P (1999) J Solid State Chem 143:52CrossRefGoogle Scholar
  71. 71.
    Doumerc J-P (1994) J Solid State Chem 110:419CrossRefGoogle Scholar
  72. 72.
    Raveau B (2004) In: Orlovskaya N, Browning N (eds) Mixed ionic electronic perovskites for advanced energy systems. Kluwer, Boston, pp 25–36Google Scholar

Copyright information

© Springer-Verlag 2006

Authors and Affiliations

  • A. N. Petrov
    • 1
  • V. A. Cherepanov
    • 1
  • A. Yu. Zuev
    • 1
  1. 1.Chemical DepartmentUral State UniversityYekaterinburgRussia

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