Extended defect structures in zinc oxide doped with iron and indium

(Note: The full text of this document is currently only available in the PDF Version )

Tom Hörlin, Gunnar Svensson and Eva Olsson


Abstract

The effects of iron- and indium oxide doping on the structure and magnetic susceptibility of ZnO have been studied. The nominal compositions were InxFe2–xO3(ZnO)n with 0≤x≤1 and n=23, 48 and 98. Magnetic measurements showed the iron-doped samples to be paramagnetic, with a behaviour indicating antiferromagnetic coupling between the iron ions. HREM studies showed that indium and iron are incorporated as layer defects of two kinds. One type forms cubic close packed (ccp) planes perpendicular to the c axis, and the other appears as corrugated layers inserted between the former. The folds in the corrugated layers consist of alternating (114) and (11[4 with combining macron]) planes. Analytical transmission electron microscopy studies revealed that indium prefers the ccp layers, whereas iron can be found in both types of defects. Structural models based upon the experimental results are presented.


References

  1. G. Heiland, E. Mollwo and F. Stöckmann, Solid State Phys., 1959, 8, 193 Search PubMed.
  2. R. Wang, A. W. Sleight and D. Cleary, Chem. Mater., 1996, 8, 433 CrossRef CAS.
  3. R. Wang, A. W. Sleight, R. Platzer and J. A. Gardner, J. Solid State Chem., 1996, 122, 166 CrossRef CAS.
  4. T. Hörlin and J. Grins, unpublished results.
  5. H. Kasper, Z. Anorg. Allg. Chem., 1967, 349, 113 CAS.
  6. P. J. Cannard and R. J. D. Tilley, J. Solid State Chem., 1988, 73, 418 CAS.
  7. M. A. McCoy, R. W. Grimes and W. E. Lee, Philos. Mag. A, 1997, 76, 1187 Search PubMed.
  8. N. Kimizuka, T. Mohri, Y. Matsui and K. Siratori, J. Solid State Chem., 1988, 74, 98 CAS.
  9. M. Nakamura, N. Kimizuka and T. Mohri, J. Solid State Chem., 1990, 86, 16 CrossRef CAS.
  10. N. Kimizuka, M. Isobe, M. Nakamura and T. Mohri, J. Solid State Chem., 1993, 103, 394 CrossRef CAS.
  11. N. Kimizuka and T. Mohri, J. Solid State Chem., 1989, 78, 98 CAS.
  12. M. Nakamura, N. Kimizuka and T. Mohri, J. Solid State Chem., 1991, 93, 298 CAS.
  13. K. Siratori and N. Kimizuka, J. Solid State Chem., 1992, 99, 243 CAS.
  14. M. Nakamura, N. Kimizuka, T. Mohri and M. Isobe, J. Solid State Chem., 1993, 105, 535 CrossRef CAS.
  15. M. Nakamura, N. Kimizuka, T. Mohri and M. Isobe, J. Alloys Comp., 1993, 192, 105 CAS.
  16. T. Tsubota, M. Ohtaki, K. Eguchi and H. Arai, J. Mater. Chem., 1997, 7, 85 RSC.
  17. H. Ohta, W.-S. Seo and K. Koumoto, J. Am. Ceram. Soc., 1996, 79, 2193 CAS.
  18. N. Kimizuka, M. Isobe and M. Nakamura, J. Solid State Chem., 1995, 116, 170 CrossRef CAS.
  19. N. Uchida, Y. Bando and N. Kimizuka, 13th Int. Conf. Electron. Microsc., Paris, 1994, vol. 2, p. 891 Search PubMed.
  20. Y. Bando, 13th Int. Conf. Electron. Microsc. Paris, 1994, vol. 1, p. 591 Search PubMed.
  21. N. Uchida, Y. Bando, M. Nakamura and N. Kimizuka, J. Electron Microsc., 1994, 43, 146 Search PubMed.
  22. E. Olsson, G. Svensson and T. Hörlin, Eur. Meet. Electron. Micr. Dublin, 1996 Search PubMed.
  23. M. Isobe, N. Kimizuka, M. Nakamura and T. Mohri, Acta Crystallogr., Sect. C, 1994, 50, 332 CrossRef.
  24. K. E. Johansson, T. Palm and P.-E. Werner, J. Phys. E, 1980, 13, 1289 CrossRef CAS.
  25. V. D. Frechette and C. F. Cline, Am. Mineral., 1963, 48, 1381 CAS.
  26. R. A. Powell, W. E. Spicer and J. C. McMenamin, Phys. Rev. B, 1972, 6, 3065.
  27. F. E. Mabbs and D. J. Machin, Magnetism and Transition Metal Complexes, Chapman and Hall, London, 1973 Search PubMed.
  28. D. M. Giaquinta, W. M. Davis and H.-C. Zur Loye, Acta Crystallogr., Sect. C, 1994, 50, 5 CrossRef.
Click here to see how this site uses Cookies. View our privacy policy here.