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Surface and chemical diffusion effects of nanowire electrodes in lithium-ion batteries
被引:0
|作者:
Ning Jia
ZhiLong Peng
Shuai Wang
JianJun Li
Yin Yao
ShaoHua Chen
机构:
[1] Beijing Institute of Technology,Institute of Advanced Structure Technology
[2] Beijing Institute of Technology,Beijing Key Laboratory of Lightweight Multi
[3] Beijing Institute of Technology,Functional Composite Materials and Structures
[4] Central South University,State Key Laboratory of Explosion Science and Technology
来源:
Science China Technological Sciences
|
2020年
/
63卷
关键词:
lithium-ion battery;
nanowire electrode;
diffusion-induced stresses;
surface effect;
surface energy density;
D O I:
暂无
中图分类号:
学科分类号:
摘要:
Nanostructured electrodes with surface effect show a distinct advantage in prolonging the lifetime of lithium-ion (Li-ion) battery. In order to characterize the surface and chemical diffusion effects in a cylindrical nanowire electrode, a new theoretical model is proposed based on a combination of the diffusion theory and a surface energy density-based elastic theory. With the reformulation of the stress boundary condition in terms of a surface-induced traction, the bulk surface energy density and surface relaxation parameter are introduced as two simple parameters characterizing the surface effect in nanowire electrodes, instead of the surface elastic constants always used in existing models. Closed-form solutions of the diffusion-induced elastic fields under potentiostatic operation are derived. It is found that the radial expansion and tensile stress in nanowire electrodes become smaller than the classical predictions without surface effect and decrease monotonically with a decreasing nanowire radius when the surface effect is considered. Such phenomena can be basically attributed to the action of surface-induced traction on the nanowire surface. These results demonstrate the convenience and effectiveness of the present model in predicting the chemo-mechanical behavior of nanowire electrodes, which should be of guidance value for the optimal design of durable electrodes.
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页码:2413 / 2422
页数:9
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