Boosting the Cycle Performance of Iron Trifluoride Based Solid State Batteries at Elevated Temperatures by Engineering the Cathode Solid Electrolyte Interface

Author:

Hu Huan1,Zhang Xuedong1,Gao Zhenren1,Su Yong1,Liu Shuangxu1,Wu Feixiang2,Ren Xiaolei3,He Xin1,Song Binghui1,Lyu Pengbo1,Huang Jianyu14ORCID,Huang Qiao1

Affiliation:

1. School of Materials Science and Engineering Xiangtan University Xiangtan Hunan 411105 P. R. China

2. School of Metallurgy and Environment Engineering Research Center of the Ministry of Education for Advanced Battery Materials Central South University Changsha 410083 P. R. China

3. Chongqing Key Laboratory of Catalysis and New Environmental Materials College of Environment and Resources Chongqing Technology and Business University Chongqing 400067 P. R. China

4. Clean Nano Energy Center State Key Laboratory of Metastable Materials Science and Technology Yanshan University Qinhuangdao 066004 China

Abstract

AbstractIron trifluoride (FeF3) is attracting tremendous interest due to its lower cost and the possibility to enable higher energy density in lithium‐ion batteries. However, its cycle performance deteriorates rapidly in less than 50 cycles at elevated temperatures due to cracking of the unstable cathode solid electrolyte interface (CEI) followed by active materials dissolution in liquid electrolyte. Herein, by engineering the salt composition, the Fe3O4‐type CEI with the doping of boron (B) atoms in a polymer electrolyte at 60 °C is successfully stabilized. The cycle life of the well‐designed FeF3‐based composite cathode exceeds an unprecedented 1000 cycles and utilizes up to 70% of its theoretical capacities. Advanced electron microscopy combined with density functional theory (DFT) calculations reveal that the B in lithium salt migrates into the cathode and promotes the formation of an elastic and mechanic robust boron‐contained CEI (BOR‐CEI) during cycling, by which the durability of the CEI to frequent cyclic large volume changes is significantly enhanced. To this end, the notorious active materials dissolution is largely prohibited, resulting in a superior cycle life. The results suggest that engineering the CEI such as tuning its composition is a viable approach to achieving FeF3 cathode‐based batteries with enhanced performance.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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