First-principles calculations of migration energy of lithium ions in halides and chalcogenides

被引:28
作者
Kishida, I
Koyama, Y
Kuwabara, A
Yamamoto, T
Oba, F
Tanaka, I
机构
[1] Kyoto Univ, Dept Mat Sci & Engn, Kyoto 6068501, Japan
[2] Nagoya Univ, Dept Mat Sci & Engn, Chikusa Ku, Nagoya, Aichi 4648403, Japan
[3] Waseda Univ, Dept Mat Sci & Engn, Shinjuku Ku, Tokyo 1698555, Japan
关键词
D O I
10.1021/jp0559229
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Migration of Li+ ions via the vacancy mechanism in LiX (X = F, Cl, Br, and 1) with the rocksalt and hypothetical zinc blende structures and Li2X (X = O, S, Se, and Te) with the antifluorite structure has been investigated using first-principles projector augmented wave calculations with the generalized gradient approximation. The migration paths and energies, determined by the nudged-elastic-band method, are discussed on the basis of two idealized models: the rigid-sphere and charged-sphere models. The trajectories and energy profiles of the migration in these lithium compounds vary between these two models, depending on the anion species and crystal structure. The migration energies in LiX with both the rocksalt and hypothetical zinc blende structures show a tendency to decrease with increasing periodic number of the anion species in the periodic table. This is consistent with the widely accepted view that anion species with large ionic radii and high polarizabilities are favorable for good ionic conduction. In contrast, Li2O exhibits the lowest migration energy among Li2X compounds, although O is the smallest among the chalcogens, indicating that electrostatic attractive interactions play the dominant role in the inter-ion interactions in Li2O and, therefore, in the ion migration.
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收藏
页码:8258 / 8262
页数:5
相关论文
共 22 条
[1]   PROJECTOR AUGMENTED-WAVE METHOD [J].
BLOCHL, PE .
PHYSICAL REVIEW B, 1994, 50 (24) :17953-17979
[2]   Ab initio study of Li+ diffusion paths in the monoclinic Li0.5CoO2 intercalate [J].
Catti, M .
PHYSICAL REVIEW B, 2000, 61 (03) :1795-1803
[3]   DEFECT STRUCTURES AND IONIC TRANSPORT IN LITHIUM-OXIDE [J].
CHADWICK, AV ;
FLACK, KW ;
STRANGE, JH ;
HARDING, J .
SOLID STATE IONICS, 1988, 28 :185-188
[4]   DEFECT ENERGETICS IN OXIDE MATERIALS FROM 1ST PRINCIPLES [J].
DEVITA, A ;
GILLAN, MJ ;
LIN, JS ;
PAYNE, MC ;
STICH, I ;
CLARKE, LJ .
PHYSICAL REVIEW LETTERS, 1992, 68 (22) :3319-3322
[5]  
Galasso FS., 1970, STRUCTURE PROPERTIES
[6]   INHOMOGENEOUS ELECTRON-GAS [J].
RAJAGOPAL, AK ;
CALLAWAY, J .
PHYSICAL REVIEW B, 1973, 7 (05) :1912-1919
[7]  
Jonsson H., 1998, NUDGED ELASTIC BAND
[8]   Lithium ionic conductor thio-LISICON -: The Li2S-GeS2-P2S5 system [J].
Kanno, R ;
Maruyama, M .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2001, 148 (07) :A742-A746
[9]   SELF-CONSISTENT EQUATIONS INCLUDING EXCHANGE AND CORRELATION EFFECTS [J].
KOHN, W ;
SHAM, LJ .
PHYSICAL REVIEW, 1965, 140 (4A) :1133-&
[10]   Density-functional simulations of lithium intercalation in rutile [J].
Koudriachova, MV ;
Harrison, NM ;
de Leeuw, SW .
PHYSICAL REVIEW B, 2002, 65 (23) :2354231-23542312