Deshielding Anions Enable Solvation Chemistry Control of LiPF6‐Based Electrolyte toward Low‐Temperature Lithium‐Ion Batteries

Author:

Yuan Song12,Cao Shengkai3,Chen Xi12,Wei Jiaqi2,Lv Zhisheng3,Xia Huarong2,Li Jiaofu2,Zhang Hang2,Liu Lin2,Tian Changhao23,Chen Lixun12,Zhang Wei2,Xing Zhenxiang3,Li Haicheng4,Li Shuzhou2,Zhu Qiang3,Feng Xue4,Chen Xiaodong2ORCID

Affiliation:

1. Institute of Flexible Electronics Technology of THU Tsinghua University Jiaxing Zhejiang 314000 P. R. China

2. Innovative Centre for Flexible Devices (iFLEX) Max Planck–NTU Joint Lab for Artificial Senses School of Materials Science and Engineering Nanyang Technological University 50 Nanyang Avenue Singapore 639798 Republic of Singapore

3. Institute of Materials Research and Engineering (IMRE) Agency for Science Technology and Research (A*STAR) 2 Fusionopolis Way, Innovis #08‐03 Singapore 138634 Republic of Singapore

4. Center for Flexible Electronics Technology Tsinghua University No. 30, Shuangqing Road Beijing 100084 P. R. China

Abstract

AbstractSevere capacity decay under subzero temperatures remains a significant challenge for lithium‐ion batteries (LIBs) due to the sluggish interfacial kinetics. Current efforts to mitigate this deteriorating interfacial behavior rely on high‐solubility lithium salts (e.g., Lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), Lithium bis(fluorosulfonyl)imide (LiFSI))‐based electrolytes to construct anion participated solvation structures. However, such electrolytes bring issues of corrosion on the current collector and increased costs. Herein, the most commonly used Lithium hexafluorophosphate (LiPF6) instead, to establish a peculiar solvation structure with a high ratio of ion pairs and aggregates by introducing a deshielding NO3 additive for low‐temperature LIBs is utilized. The deshielding anion significantly reduces the energy barrier for interfacial behavior at low temperatures. Benefiting from this, the graphite (Gr) anode retains a high capacity of ≈72.3% at −20 °C, which is far superior to the 32.3% and 19.4% capacity retention of counterpart electrolytes. Moreover, the LiCoO2/Gr full cell exhibits a stable cycling performance of 100 cycles at −20 °C due to the inhibited lithium plating. This work heralds a new paradigm in LiPF6‐based electrolyte design for LIBs operating at subzero temperatures.

Funder

National Research Foundation Singapore

Publisher

Wiley

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