DOI QR코드

DOI QR Code

EPR Study of the High $T_c$ Superconductor $YBa_2$$Cu_3$$O_{7-y}$ Doped with Palladium or Zinc

  • Hag Chun Kim (Department of Chemistry, Sogang University) ;
  • Hyunsoo So (Department of Chemistry, Sogang University) ;
  • Ho Keun Lee (Korea Standards Research Institute)
  • Published : 1991.10.20

Abstract

EPR spectra of the high $T_c$ superconductor $YBa_2Cu_3O_{7-y}$ (YBCO) doped with $Pd^{2+} or Zn^{2+}$ have been measured at several temperatures and dopant concentrations. The spectral intensity of $YBa_2({Cu_{1-x}}{Pd_x})_3O_{7-y}$ is proportional to the dopant concentration. The behavior of $YBa_2(Cu_{1-x}Zn_x)_3O_{7-y}$ is quite different: the spectral intensity remains almost constant up to x=0.10 and then increases rapidly above x=0.10. The results are interpreted in terms of localized and antiferromagnetically spin-paired d holes in both CuO chain and planes. The $Pd_{2+}$ ion substitutes on the CuO chain consisting of "CuOCu dimers", and a $Cu_{2+}$ ion with an unpaired spin is gene rated for each $Pd_{2+}$ ion substituted. On the other hand, $Zn_{2+}$ substitutes on the CuO planes, and all or most of the spins in the two-dimensional plane manage to pair up in the region of low dopant concentration. When the dopant concentration exceeds a certain limit, it becomes more difficult for the spins to find partners, and the number of unpaired spins increases rapidly with increasing dopant concentration. The $Zn_{2+}$ ion is more effective than the $Pd_{2+}$ ion in suppressing the superconductivity of YBCO. This is attributed to the fact that $Zn_{2+}$ substitutes on the CuO planes which are mainly responsible for the superconductivity, while $Pd_{2+}$ substitutes on the CuO chain which is of secondary importance in the superconductivity.

Keywords

References

  1. Phys. Rev. Lett. v.58 M. K. Wu;J. R. Ashburn;C. J. Torng;P. H. Hor;R. L. Meng;L. Gao;Z. H. Huang;Y. Q. Wang;C. W. Chu
  2. Bull. Korean Chem. Soc. v.10 S. Hwang;H. So
  3. Europhys. Lett. v.4 Y. Laligant;G. Ferey;M. Hervieu;B. Raveau
  4. Phys. Rev. Letts. v.60 G. Xiao;M. Z. Cieplak;A. Gavrin;F. H. Streitz;A. Bakhsai;C. L. Chien
  5. Jpn. J. App. Phys. v.27 T. Kajitani;K. Kusaba;M. Kikuchi;Y. Syono;M. Hirabayashi
  6. J. Solid State Chem. v.73 J. Ferey;A. Le Bail;Y. Laligant;M. Hervieu;B. Raveau;A. Sulpice;R. Tournier
  7. J. Superconductivity v.1 C. Jee;D. Nichols;A. Kebede;S. Rahman;J. E. Crow;A. M. Ponte Goncalves;T. Mihalisin;G. H. Myer;I. Perez;R. E. Salomon;P. Schlottman;S. H. Bloom;M. V. Kuric;Y. S. Yao;R. P. Guertin
  8. J. Phys. Soc. Jpn. v.57 Y. Oda;H. Fujita;T. Ohmich;T. Kohara;I. Nakada;K. Asayama
  9. Jpn. J. Appl. Phys. v.26 K. Kojima;K. Ohbayashi;M. Udagawa;T. Hihara
  10. Jpn. J. Appl. Phys. v.26 K. Kanoda;T. Takahashi;T. Kawagoe;T. Mizoguchi;S. Kagoshima;M. Hasumi
  11. Proc. Roy. Soc. (London) v.A228 B. Bleaney;K. D. Bowers;M. H. L. Pryce
  12. Phys. Rev. v.B36 J. Stankowski;P. K. Kahol;N. S. Dalal;J. S. Moodera
  13. Jpn. J. App. Phys. v.26 T. Takabatake;M. Ishikawa;T. Sugano
  14. Phys. Rev. v.B36 F. Mehran;S. E. Barnes;T. R. McGuire;W. J. Gallgher;R. L. Sandstron;T. R. Dinger;D. A. Chance
  15. Phys. Rev. Lett. v.63 P. C. Hammel;M. Takigawa;R. H. Heffner;Z. Fisk;K. C. Ott
  16. Phys. Rev. v.B41 D. L. Cox;B. R. Tress
  17. Phys. Rev. v.B39 C. H. Pennington;D. J. Durand;C. P. Slichter;J. P. Rice;E. D. Bukowski;D. M. Ginsberg
  18. Phys. Rev. v.B39 C. H. Pennington;D. J. Durand;C. P. Slichter;J. P. Rice;E. D. Bukowski;D. M. Ginsberg
  19. Int. J. Mod. Phys. v.B1 T. Penney;M. W. Shafer;B. L. Olson
  20. Solid State Comm. v.71 F. Mehran;P. W. Anderson
  21. Phys. Rev. v.B36 D. C. Johnston(et al.)
  22. Prog. Theo. Phys. v.21 H. Hasegawa
  23. Phys. Stat. Solid. v.B84 K. Sugawara
  24. Ark. Mat. Astron. Fys. v.A26 L. Hulthen
  25. Mater. Res. Bull. v.8 P. W. Anderson
  26. Solid State Chem. v.64 S. B. Oseroff;D. C. Vier;J. F. Smyth;C. T. Saling;S. Schultz;Y. Dalichaouch;B. W. Lee;M. B. Maple;Z. Fisk;J. D. Thompson;J. L. Smith;E. Zimgiebl
  27. Phys. Rev. v.B42 F. Bridges;J. B. Boyce;T. Claeson;T. H. Geballe;J. M. Tarascon
  28. Phys. Rev. v.B42 J. M. Tarascon;E. Wang;S. Kivelson;B. G. Bagley;G. W. Hull;R. Ramesh
  29. J. Phys. Chem. v.84 H. So;G. P. Haight Jr.;R. L. Belford
  30. Jpn. J. Appl. Phys. v.27 M. Maeda;Y. Tanaka;M. Fukutomi;T. Asaro
  31. Nature (London) v.332 Z. Z. Sheng;A. M. Hermann