TY - JOUR
T1 - Lithium-assisted creep deformation behavior of Sn nanoparticle electrode with fracture-resistant ability
AU - Xu, Chaoqun
AU - Deng, Qiufeng
AU - Weng, Zhengdong
AU - Chen, Bingbing
AU - Zhou, Jianqiu
N1 - Publisher Copyright:
© Copyright Materials Research Society 2019.
PY - 2019/12/16
Y1 - 2019/12/16
N2 - Mechanical fracture of electrodes will occur during lithiation caused by large volume changes, which leads to the capacity loss of the lithium-ion battery. Herein, we present a new analytical model to investigate the effect of creep deformation on stress relaxation and fracture of the lithiated tin (Sn) electrode under the galvanostatic and potentiostatic operation. Interestingly, it is found that the presence of creep can improve fracture resistance and toughness of the Sn electrode. In addition, the surface effect has the capacity to weaken the creep deformation effectively. And the different size of the Sn electrode shows different effects for creep deformation. This conclusion explains the difference in charging conditions, and the mechanism of stress change inside the electrode is also different. Deeply, the base on our model, the stress strength factor, and critical size of the electrode have been evaluated under galvanostatic and potentiostatic operation with creep deformation effects. Finally, the safety area during lithiation is established to determine the critical size of the Sn electrode. And the presence of creep deformation may significantly increase critical dimensions of the electrode. These results will provide a valuable basis to design the durable electrodes.
AB - Mechanical fracture of electrodes will occur during lithiation caused by large volume changes, which leads to the capacity loss of the lithium-ion battery. Herein, we present a new analytical model to investigate the effect of creep deformation on stress relaxation and fracture of the lithiated tin (Sn) electrode under the galvanostatic and potentiostatic operation. Interestingly, it is found that the presence of creep can improve fracture resistance and toughness of the Sn electrode. In addition, the surface effect has the capacity to weaken the creep deformation effectively. And the different size of the Sn electrode shows different effects for creep deformation. This conclusion explains the difference in charging conditions, and the mechanism of stress change inside the electrode is also different. Deeply, the base on our model, the stress strength factor, and critical size of the electrode have been evaluated under galvanostatic and potentiostatic operation with creep deformation effects. Finally, the safety area during lithiation is established to determine the critical size of the Sn electrode. And the presence of creep deformation may significantly increase critical dimensions of the electrode. These results will provide a valuable basis to design the durable electrodes.
KW - creep deformation
KW - fracture
KW - slithium-ion batteries
KW - stress relaxation
UR - http://www.scopus.com/inward/record.url?scp=85076473275&partnerID=8YFLogxK
U2 - 10.1557/jmr.2019.346
DO - 10.1557/jmr.2019.346
M3 - 文章
AN - SCOPUS:85076473275
SN - 0884-2914
VL - 34
SP - 3887
EP - 3898
JO - Journal of Materials Research
JF - Journal of Materials Research
IS - 23
ER -