TY - JOUR
T1 - A sponge-driven elastic interface for lithium metal anodes
AU - Yu, Han
AU - Xie, Jian
AU - Shu, Na
AU - Pan, Fei
AU - Ye, Jianglin
AU - Wang, Xinyuan
AU - Yuan, Hong
AU - Zhu, Yanwu
N1 - Publisher Copyright:
Copyright © 2019 Han Yu et al.
PY - 2019
Y1 - 2019
N2 - The lithium (Li) metal is one promising anode for next generation high-energy-density batteries, but the large stress fluctuation and the nonuniform Li deposition upon cycling result in a highly unstable interface of the Li anode. Herein, a simple yet facile engineering of the elastic interface on the Li metal anodes is designed by inserting a melamine sponge between Li and the separator. Driven by the good elasticity of the sponge, the modified Li anode maintains a Coulombic efficiency of 98.8% for 60 cycles and is cyclable at 10mAcm-2 for 250 cycles, both with a high capacity of 10mAh cm-2. We demonstrate that the sponge can be used to replace the conventional polypropylene as a porous yet elastic separator, showing superior cycling and rate performance as well. In addition to the efficiency of the elastic interface on the cycling stability, which is further confirmed by an in situ compression-electrochemistry measurement, the porous structure and polar groups of the sponge demonstrate an ability of regulating the transport of Li ions, leading to a uniform deposition of Li and the suppression of Li dendrites in cycling.
AB - The lithium (Li) metal is one promising anode for next generation high-energy-density batteries, but the large stress fluctuation and the nonuniform Li deposition upon cycling result in a highly unstable interface of the Li anode. Herein, a simple yet facile engineering of the elastic interface on the Li metal anodes is designed by inserting a melamine sponge between Li and the separator. Driven by the good elasticity of the sponge, the modified Li anode maintains a Coulombic efficiency of 98.8% for 60 cycles and is cyclable at 10mAcm-2 for 250 cycles, both with a high capacity of 10mAh cm-2. We demonstrate that the sponge can be used to replace the conventional polypropylene as a porous yet elastic separator, showing superior cycling and rate performance as well. In addition to the efficiency of the elastic interface on the cycling stability, which is further confirmed by an in situ compression-electrochemistry measurement, the porous structure and polar groups of the sponge demonstrate an ability of regulating the transport of Li ions, leading to a uniform deposition of Li and the suppression of Li dendrites in cycling.
UR - http://www.scopus.com/inward/record.url?scp=85078793805&partnerID=8YFLogxK
U2 - 10.34133/2019/9129457
DO - 10.34133/2019/9129457
M3 - Article
AN - SCOPUS:85078793805
SN - 2096-5168
VL - 2019
JO - Research
JF - Research
M1 - 9129457
ER -