| Literature DB >> 30856336 |
Derui Dong1, Bin Zhou1, Yufei Sun1, Hui Zhang2, Guiming Zhong3, Qingyu Dong4, Fang Fu1, Hao Qian1, Zhiyong Lin1, Derong Lu5, Yanbin Shen4, Jihuai Wu1, Liwei Chen4,6, Hongwei Chen1.
Abstract
In recent years solid Li+ conductors with competitive ionic conductivity to those of liquid electrolytes have been reported. However, the incorporation of highly conductive solid electrolytes into the lithium-ion batteries is still very challenging mainly due to the high resistance existing at the solid-solid interfaces throughout the battery structure. Here, we demonstrated a universal interfacial modification strategy through coating a curable polymer-based glue electrolyte between the electrolyte and electrodes, aiming to address the poor solid-solid contact and thus decrease high interfacial resistance. The liquid glue exhibits both great wettability as well as chemical/electrochemical stability to most of the electrodes, and it can be easily solidified into a polymer electrolyte layer through a "post-curing" treatment. As a result, symmetric Li batteries with the glue modification exhibit much smaller impedance and enhanced stability upon plating/stripping cycles compared to the batteries without glue modification. The all-solid-state Li-S batteries with glue modification show significantly enhanced performances. The strategy of developing glue electrolytes to improve the electrode-electrolyte interface contact provides an alternative option for improving many other solid-state batteries.Entities:
Keywords: Polymer electrolyte; glue; interface; solid-state battery
Year: 2019 PMID: 30856336 DOI: 10.1021/acs.nanolett.8b05019
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189