The layered intercalation compounds Li(Mn1-yCoy)O-2: Positive electrode materials for lithium-ion batteries

Citation
Ar. Armstrong et al., The layered intercalation compounds Li(Mn1-yCoy)O-2: Positive electrode materials for lithium-ion batteries, J SOL ST CH, 145(2), 1999, pp. 549-556
Citations number
31
Categorie Soggetti
Inorganic & Nuclear Chemistry
Journal title
JOURNAL OF SOLID STATE CHEMISTRY
ISSN journal
00224596 → ACNP
Volume
145
Issue
2
Year of publication
1999
Pages
549 - 556
Database
ISI
SICI code
0022-4596(199907)145:2<549:TLICLP>2.0.ZU;2-3
Abstract
The layered intercalation compounds Li(Mn1-yCoy)O-2; 0 less than or equal t o y less than or equal to 0.5 cannot be prepared by conventional solid stat e reaction but have been synthesized using a solution-based route coupled w ith ion exchange. A continuous range of solid solutions with rhombohedral s ymmetry exists for 0.1 less than or equal to y less than or equal to 0.5. C onsideration of transition metal to oxygen bond lengths indicates that Mn3 is replaced by cobalt in the trivalent state, Localized high spin Mn3+ (3d (4)) induces a cooperative Jahn-TelIer distortion in layered LiMnO2, loweri ng the symmetry from rhombohedral R (3) over bar m to monoclinic (C2/m). Su bstitution of as little as 10% Mn by Co is sufficient to suppress the disto rtion in Li-0.9(Mn0.9Co0.1)O-2, whereas half the Li must be extracted from LiMnO2 to achieve a single undistorted rhombohedral phase. On removing and reinserting Li in LiMnO2 only half the quantity of Li (equivalent to a spec ific charge of 130 mAhg(-1)) may be reinserted on the first cycle; this sub stantial drop in capacity is eliminated with only 10% Co substitution. The latter material can sustain a large capacity on cycling (200 mAhg(-1)). Hig her Co contents have somewhat lower capacities but fade less at higher cycl e numbers, The marked improvement in capacity retention of the Co-doped mat erials compared with pure LiMnO2 may be related in part to the absence of t he Jahn-Teller distortion. Electrochemical data indicate conversion to a sp inel-like structure on cycling. Such conversion is progressively slower wit h increasing Co content. Cycling of this spinel-like material is significan tly better than Co-doped spinel of the same composition. These materials ar e of interest as electrodes in rechargeable lithium batteries. (C) 1999 Aca demic Press.