Correlation between cointercalation of solvents and electrochemical intercalation of lithium into graphite in propylene carbonate solution

被引:82
作者
Abe, T [1 ]
Kawabata, N
Mizutani, Y
Inaba, M
Ogumi, Z
机构
[1] Kyoto Univ, Grad Sch Engn, Kyoto 6108501, Japan
[2] Kyoto Univ, Inst Adv Energy, Kyoto 6108501, Japan
关键词
D O I
10.1149/1.1541004
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Correlation of solvent cointercalation and electrochemical intercalation of Li into graphite was studied. Cointercalation of dimethylsulfoxide (DMSO), 2-methyltetrahydrofuran (2-MeTHF), dimethoxymethane (DMM), diethoxymethane (DEM), 1,2-diethoxyethane (DEE) and 1,2-dibutoxyethane (DBE) into graphite with Li was investigated by the solution method to find out that DMSO, DMM, DEM, and DEE can cointercalate into graphite with Li and that 2-MeTHF and DBE cannot. By using the functional density theory, steric hindrance of solvated lithium ion was found to be predominant for cointercalation. Electrochemical Li intercalation into graphite was studied in propylene carbonate (PC) solution containing 1 mol dm(-3) LiClO4 in the presence of various amounts of the above solvents. By the addition of DMSO in the PC electrolyte, solvent decomposition at around 1.0 V (vs. Li/Li+) was thoroughly suppressed, and electrochemical intercalation of Li took place. Suppression of the solvent decomposition was dependent on the amount of DMSO. This is because competing cointercalation of DMSO suppressed the cointercalation of PC which causes the exfoliation of graphite, leading to the formation of the stable solid electrolyte interface. Suppression of cointercalation of PC was also observed by the addition of DMM, DEM, and DEE in a limited condition. Addition of 2-MeTHF and DBE into the PC electrolyte is not available for electrochemical intercalation of lithium. These results show that cointercalation plays an important role for electrochemical intercalation of lithium into graphite. (C) 2003 The Electrochemical Society.
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页码:A257 / A261
页数:5
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共 33 条
  • [1] Intercalation of lithium into natural graphite flakes and heat-treated polyimide films in ether-type solvents by chemical method
    Abe, T
    Mizutani, Y
    Tabuchi, T
    Ikeda, K
    Asano, M
    Harada, T
    Inaba, M
    Ogumi, Z
    [J]. JOURNAL OF POWER SOURCES, 1997, 68 (02) : 216 - 220
  • [2] AUBACH D, 1995, J ELECTROCHEM SOC, V142, P1746
  • [3] Failure and stabilization mechanisms of graphite electrodes
    Aurbach, D
    Levi, MD
    Levi, E
    Schechter, A
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (12): : 2195 - 2206
  • [4] STRUCTURE AND TRANSITIONS IN COORDINATED LITHIUM GRAPHITE-INTERCALATION COMPOUNDS
    BEGUIN, F
    GONZALEZ, B
    CONARD, J
    ESTRADESZWARKOPF, H
    GUERARD, D
    [J]. SYNTHETIC METALS, 1985, 12 (1-2) : 187 - 193
  • [5] ELECTROCHEMICAL PREPARATION AND PROPERTIES OF IONIC ALKALI METAL- AND NR4-GRAPHITE INTERCALATION COMPOUNDS IN ORGANIC ELECTROLYTES
    BESENHARD, JO
    [J]. CARBON, 1976, 14 (02) : 111 - 115
  • [6] FILMING MECHANISM OF LITHIUM-CARBON ANODES IN ORGANIC AND INORGANIC ELECTROLYTES
    BESENHARD, JO
    WINTER, M
    YANG, J
    BIBERACHER, W
    [J]. JOURNAL OF POWER SOURCES, 1995, 54 (02) : 228 - 231
  • [7] Origin of graphite exfoliation - An investigation of the important role of solvent cointercalation
    Chung, GC
    Kim, HJ
    Yu, SI
    Jun, SH
    Choi, JW
    Kim, MH
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2000, 147 (12) : 4391 - 4398
  • [8] SUPPRESSION OF STAGING IN LITHIUM-INTERCALATED CARBON BY DISORDER IN THE HOST
    DAHN, JR
    FONG, R
    SPOON, MJ
    [J]. PHYSICAL REVIEW B, 1990, 42 (10): : 6424 - 6432
  • [9] PHASE-DIAGRAM OF LIXC6
    DAHN, JR
    [J]. PHYSICAL REVIEW B, 1991, 44 (17): : 9170 - 9177
  • [10] ELECTROCHEMICAL DECOMPOSITION OF PROPYLENE CARBONATE ON GRAPHITE
    DEY, AN
    SULLIVAN, BP
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1970, 117 (02) : 222 - &