Issue
Korean Journal of Chemical Engineering,
Vol.22, No.4, 560-565, 2005
The Effects of Sulfur Doping on the Performance of O3-Li0.7[Li1/12Ni1/12Mn5/6]O2 Powder
Li0.7[Li1/12Ni1/12Mn5/6]O2 and Li0.7[Li1/12Ni1/12Mn5/6]O2.ySy (y=0.1, 0.2, 0.3) powders were synthesized by using a sol-gel method. As-prepared samples showed typical rhombohedral O3 layered structure. The shape of the initial discharge curve for the samples was almost equal to that of the layered structure. However, the electrode materials were transferred from layered to spinel structures with cycling. At the first cycle, Li0.7[Li1/12Ni1/12Mn5/6]O2 and Li0.7[Li1/12Ni1/12 Mn5/6]O1.9S0.1, Li0.7[Li1/12Ni1/12Mn 5/6]O1.8S0.2, and Li0.7[Li1/12Ni1/12Mn5/6]O1.7S0.3 delivered the discharge capacities of 238, 230, 224, and 226 mAh/g, respectively, with their capacity fading rates of 0.34, 0.21, 0.12, 0.25%/cycle, respectively. The partial substitutions of Ni and S for Mn and O in Li0.7[Li1/12Ni1/12Mn5/6]O2 significantly enhanced the electrochemical properties of the lithium manganese oxide materials.
[References]
  1. Amatucci GG, Pereira N, Zheng T, Tarascon JM, J. Electrochem. Soc., 148(2), A171, 2001
  2. Ammundsen B, Paulsen J, Adv. Mater., 13, 943, 2001
  3. Liu W, Farrington GC, Chaput F, Dunn B, J. Electrochem. Soc., 143(3), 879, 1996
  4. Armstrong AR, Gitzendanner R, Robertson AD, Bruce PG, Chem. Commun., 1833, 1998
  5. Annstrong AR, Robertson AD, Gitzendanner R, Bruce PG, J. Solid State Chem., 145, 549, 1999
  6. Bruce PG, Armstrong AR, Gitzendanner RL, J. Mater. Chem., 1, 193, 1999
  7. Chiang YM, Sadoway DR, Jang YI, Huang B, Wang H, Electrochem. Solid State Lett., 2, 107, 1999
  8. Dahn JR, Scken UV, Michal CA, Solid State Ion., 44, 87, 1990
  9. Davidson IJ, McMillan RJ, Slegr H, Luan B, Kargina I, Murray JJ, Swainson IP, J. Power Sources, 82, 406, 1999
  10. Goodenough JB, Le Journal de Physique et le Radium, 20, 155, 1959
  11. Guyomard D, Tarascon JM, Solid State Ion., 69(3-4), 222, 1994
  12. Jang YI, Huang B, Chiang YM, Sadoway DR, Electrochem. Solid State Lett., 1, 13, 1998
  13. Lee YS, Sun YK, Nahm KS, Solid State Ion., 118(1-2), 159, 1999
  14. Naghash AR, Lee JY, Electrochim. Acta, 46(15), 2293, 2001
  15. Naghash AR, Lee JY, Electrochim. Acta, 46(7), 941, 2001
  16. Nitta Y, Okamura K, Haraguchi K, Kobayashi S, Ohata A, J. Power Sources, 54, 511, 1995
  17. Ohuzuku T, Ueda A, Nagyama M, J. Electrochem. Soc., 140, 1862, 1993
  18. Park KS, Cho MH, Park SH, Nahm KS, Sun YK, Lee YS, Yoshio M, Electrochim. Acta, 47(18), 2937, 2002
  19. Park KS, Cho MH, JIn SJ, Song CH, Nahm KS, Korean J. Chem. Eng., 5, 21, 2004
  20. Park SH, Park KS, Cho MH, Sun YK, Nahm KS, Lee YS, Yoshio M, Korean J. Chem. Eng., 19(5), 791, 2002
  21. Park SH, Park KS, Moon SS, Sun YK, Nahm KS, J. Power Sources, 92(1-2), 244, 2001
  22. Park SH, Park KS, Sun YK, Nahm KS, J. Electrochem. Soc., 147(6), 2116, 2000
  23. Park SH, Sun YK, Park KS, Nahm KS, Lee YS, Yoshio M, Electrochim. Acta, 47(11), 1721, 2002
  24. Paulsen JM, Dahn JR, J. Electrochem. Soc., 147(7), 2478, 2000
  25. Quine TE, Duncan MJ, Armstrong AR, Robertson AD, Bruce PG, J. Mater. Chem., 12, 2838, 2000
  26. Sun YK, Kim DW, Korean J. Chem. Eng., 16(4), 449, 1999
  27. Sun YK, Kim DW, Jin SH, Hyung YE, Moon SI, Park DK, Korean J. Chem. Eng., 15(1), 64, 1998
  28. Sun YK, Lee YS, Yoshio M, Mater. Lett., 56(4), 418, 2002