"Electrochemical Shock" of Intercalation Electrodes: A Fracture Mechanics Analysis

被引:278
作者
Woodford, William H. [1 ]
Chiang, Yet-Ming [1 ]
Carter, W. Craig [1 ]
机构
[1] MIT, Dept Mat Sci & Engn, Cambridge, MA 02139 USA
基金
美国国家科学基金会;
关键词
STRESS-INTENSITY FACTOR; LITHIUM-ION BATTERIES; MULTIPLE CRACK-PROPAGATION; DIFFUSION-INDUCED STRESS; THERMAL-SHOCK; ACOUSTIC-EMISSION; SINGLE; PARTICLES; INSERTION; GENERATION;
D O I
10.1149/1.3464773
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Fracture of electrode particles due to diffusion-induced stress has been implicated as a possible mechanism for capacity fade and impedance growth in lithium-ion batteries. In brittle materials, including many lithium intercalation materials, knowledge of the stress profile is necessary but insufficient to predict fracture events. We derive a fracture mechanics failure criterion for individual electrode particles and demonstrate its utility with a model system, galvanostatic charging of LixMn2O4. Fracture mechanics predicts a critical C-rate above which active particles fracture; this critical C-rate decreases with increasing particle size. We produce an electrochemical shock map, a graphical tool that shows regimes of failure depending on C-rate, particle size, and the material's inherent fracture toughness K-Ic. Fracture dynamics are sensitive to the gradient of diffusion-induced stresses at the crack tip; as a consequence, small initial flaws grow unstably and are therefore potentially more damaging than larger initial flaws, which grow stably. (C) 2010 The Electrochemical Society. [DOI: 10.1149/1.3464773] All rights reserved.
引用
收藏
页码:A1052 / A1059
页数:8
相关论文
共 47 条
[31]   STRESS INTENSITY FACTOR FOR SEMI-ELLIPTICAL SURFACE CRACKS LOADED BY STRESS GRADIENTS [J].
MATTHECK, C ;
MUNZ, D ;
STAMM, H .
ENGINEERING FRACTURE MECHANICS, 1983, 18 (03) :633-641
[32]   AN EMPIRICAL STRESS-INTENSITY FACTOR EQUATION FOR THE SURFACE CRACK [J].
NEWMAN, JC ;
RAJU, IS .
ENGINEERING FRACTURE MECHANICS, 1981, 15 (1-2) :185-192
[33]   Monitoring of particle fracture by acoustic emission during charge and discharge of Li/MnO2 cells [J].
Ohzuku, T ;
Tomura, H ;
Sawai, K .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1997, 144 (10) :3496-3500
[34]   The charge order transition and elastic/anelastic properties of LiMn2O4 [J].
Paolone, A ;
Cantelli, R ;
Rousse, G ;
Masquelier, C .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2003, 15 (03) :457-465
[35]   COMPUTATION OF WEIGHT FUNCTION FROM A STRESS INTENSITY FACTOR [J].
PETROSKI, HJ ;
ACHENBACH, JD .
ENGINEERING FRACTURE MECHANICS, 1978, 10 (02) :257-266
[36]   COMPOSITION DEPENDENCE OF THE ELASTIC-MODULI OF MIXED LITHIUM CADMIUM FERRITES [J].
RAVINDER, D .
JOURNAL OF APPLIED PHYSICS, 1994, 75 (10) :6121-6123
[37]   Theoretical Analysis of Stresses in a Lithium Ion Cell [J].
Renganathan, Sindhuja ;
Sikha, Godfrey ;
Santhanagopalan, Shriram ;
White, Ralph E. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2010, 157 (02) :A155-A163
[38]   Acoustic emission histometry for battery material research [J].
Sawai, K ;
Tomura, H ;
Ohzuku, T .
DENKI KAGAKU, 1998, 66 (03) :301-307
[39]   FRACTURE OF SINGLE-CRYSTAL MGAL2O4 [J].
STEWART, RL ;
BRADT, RC .
JOURNAL OF MATERIALS SCIENCE, 1980, 15 (01) :67-72
[40]  
Timoshenko S. P., 1970, THEORY ELASTICITY, P452