电解质
锂(药物)
金属锂
阳极
阴极
化学
无机化学
金属
材料科学
电极
物理化学
内科学
冶金
医学
作者
Haikuo Zhang,Ruhong Li,Long Chen,Yingzhu Fan,Hao Zhang,Ruixin Zhang,Lei Zheng,Junbo Zhang,Shouhong Ding,Yongjian Wu,Baochen Ma,Shuo‐Qing Zhang,Tao Deng,Lixin Chen,Yanbin Shen,Xiulin Fan
标识
DOI:10.1002/anie.202218970
摘要
Although great progress has been made in new electrolytes for lithium metal batteries (LMBs), the intrinsic relationship between electrolyte composition and cell performance remains unclear due to the lack of valid quantization method. Here, we proposed the concept of negative center of electrostatic potential (NCESP) and Mayer bond order (MBO) to describe solvent capability, which highly relate to solvation structure and oxidation potential, respectively. Based on established principles, the selected electrolyte with 1.7 M LiFSI in methoxytrimethylsilane (MOTMS)/ (trifluoromethyl)trimethylsilane (TFMTMS) shows unique hyperconjugation nature to stabilize both Li anode and high-voltage cathode. The 4.6 V 30 μm Li||4.5 mAh cm-2 lithium cobalt oxide (LCO) (low N/P ratio of 1.3) cell with our electrolyte shows stable cycling with 91 % capacity retention over 200 cycles. The bottom-up design concept of electrolyte opens up a general strategy for advancing high-voltage LMBs.
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