Cycling-induced stress in lithium ion negative electrodes: LiAl/LiFePO4 and Li4Ti5O12/LiFePO4 cells

被引:39
作者
Morales, J. [1 ]
Trocoli, R. [1 ]
Franger, S. [2 ]
Santos-Pena, J. [1 ]
机构
[1] Univ Cordoba, Dept Quim Inorgan & Ingn Quim, E-14071 Cordoba, Spain
[2] Univ Paris 11, CNRS, UMR 8182, Lab Phys Chim Etat Solide,ICMMO, F-91405 Orsay, France
关键词
LiFePO4; Lithium ion batteries; Electrode crumbling; Li-Al alloys; Li4Ti5O12; ALLOY ANODES; INSERTION; ALUMINUM; CARBON; MICROCRACKING; BATTERIES; CAPACITY; PHASES; MODEL; SIZE;
D O I
10.1016/j.electacta.2009.12.104
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
In this work, we examined the electrochemical behaviour of lithium ion batteries containing lithium iron phosphate as the positive electrode and systems based on Li-Al or Li-Ti-O as the negative electrode. These two systems differ in their potential versus the redox couple Li+/Li and in their morphological changes upon lithium insertion/deinsertion. Under relatively slow charge/discharge regimes, the lithium-aluminium alloys were found to deliver energies as high as 438 Wh kg(-1) but could withstand only a few cycles before crumbling, which precludes their use as negative electrodes. Negative electrodes consisting solely of aluminium performed even worse. However, an electrode made from a material with zero-strain associated to lithium introduction/removal such as a lithium titanate spinel exhibited good performance that was slightly dependent on the current rate used. The Li4Ti5O12/LiFePO4 cell provided capacities as high as 150 mAh g(-1) under C-rate in the 100th cycle. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3075 / 3082
页数:8
相关论文
共 40 条
[21]   Aluminum negative electrode in lithium ion batteries [J].
Hamon, Y ;
Brousse, T ;
Jousse, F ;
Topart, P ;
Buvat, P ;
Schleich, DM .
JOURNAL OF POWER SOURCES, 2001, 97-8 :185-187
[22]   Decrepitation Model For Capacity Loss During Cycling of Alloys in Rechargeable Electrochemical Systems [J].
Huggins, R. A. ;
Nix, W. D. .
IONICS, 2000, 6 (1-2) :57-63
[23]   CARBON AS NEGATIVE ELECTRODES IN LITHIUM SECONDARY CELLS [J].
KANNO, R ;
TAKEDA, Y ;
ICHIKAWA, T ;
NAKANISHI, K ;
YAMAMOTO, O .
JOURNAL OF POWER SOURCES, 1989, 26 (3-4) :535-543
[24]   Copper-tin anodes for rechargeable lithium batteries: an example of the matrix effect in an intermetallic system [J].
Kepler, KD ;
Vaughey, JT ;
Thackeray, MM .
JOURNAL OF POWER SOURCES, 1999, 81 :383-387
[25]  
LAZZARI M, 1995, J ELECTROCHEM SOC, V127, P557
[26]   COMPOSITE ELECTRODES CONTAINING CONDUCTING POLYMERS AND LI ALLOYS [J].
MAXFIELD, M ;
JOW, TR ;
GOULD, S ;
SEWCHOK, MG ;
SHACKLETTE, LW .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1988, 135 (02) :299-305
[27]   RECHARGEABLE LITHIUM BATTERY BASED ON PYROLYTIC CARBON AS A NEGATIVE ELECTRODE [J].
MOHRI, M ;
YANAGISAWA, N ;
TAJIMA, Y ;
TANAKA, H ;
MITATE, T ;
NAKAJIMA, S ;
YOSHIDA, M ;
YOSHIMOTO, Y ;
SUZUKI, T ;
WADA, H .
JOURNAL OF POWER SOURCES, 1989, 26 (3-4) :545-551
[28]   TERNARY LIXTIO2 PHASES FROM INSERTION REACTIONS [J].
MURPHY, DW ;
CAVA, RJ ;
ZAHURAK, SM ;
SANTORO, A .
SOLID STATE IONICS, 1983, 9-10 (DEC) :413-417
[29]   Improvement of usable capacity and cyclability of silicon-based anode materials for lithium batteries by sol-gel graphite matrix [J].
Niu, JJ ;
Lee, JY .
ELECTROCHEMICAL AND SOLID STATE LETTERS, 2002, 5 (06) :A107-A110
[30]   Effect of structure on the Fe3+/Fe2+ redox couple in iron phosphates [J].
Padhi, AK ;
Nanjundaswamy, KS ;
Masquelier, C ;
Okada, S ;
Goodenough, JB .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1997, 144 (05) :1609-1613