Reducing Voltage Hysteresis of FeF <sub>2</sub> via Oxygen Doping and Nano‐Disordering in Sulfide All‐Solid‐State Batteries

J Junyu Chen (School of Marine Sciences, Sun Yat-sen University) X Xuedong Zhang X Xinglin Li (Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan China) B Bin Xiong X Xiangze Ou (Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan China) X Xin He J Jingming Yao (Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology) K Kazu Suenaga (SANKEN (The Institute of Scientific and Industrial Research), Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka, Japan.) J Jianyu Huang (Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology) Q Qiao Huang

Abstract

ABSTRACT Conversion‐type metal fluorides are promising cathode candidates for high‐energy‐density post‐lithium batteries. Unfortunately, their practical implementation has been severely impeded by pronounced voltage hysteresis (VH). Herein, we report a gas‐phase treatment strategy to realize oxygen doping and nano‐disordering of FeF 2 , which reduces the VH of FeF 2 to a record low level of 153 mV at 80°C when integrated into sulfide all‐solid‐state batteries. Specifically, crystalline FeF 2 is doped with oxygen and refined to nanocrystals dispersed in a disordered FeOF matrix, which narrows the band gap of FeF 2 from 1.84 to 1.36 eV, decreases the ionic migration energy barrier from 2.2 to 1.2 eV, enhances its electronic conductivity from 4.1 × 10 −6 mS/cm to 0.48 mS/cm, ionic conductivity from 1.1 × 10 −6 mS/cm to 4.8 × 10 −5 mS/cm. The dramatically increased electronic and ionic conductivity boosts the charge transport kinetics and reduces the charge transfer barrier, thus suppressing the VH. Notably, the oxygen doping strategy is not restricted to FeF 2 , but is valid for a broad class of metal fluorides. These results provide a versatile solution to the long‐standing VH bottleneck in metal fluorides and are expected to accelerate the industrial adoption of metal fluoride cathodes to enable high‐energy‐density lithium batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 23, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

J

Junyu Chen

School of Marine Sciences, Sun Yat-sen University

X

Xuedong Zhang

X

Xinglin Li

Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan China

B

Bin Xiong

X

Xiangze Ou

Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan China

X

Xin He

J

Jingming Yao

Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology

K

Kazu Suenaga

SANKEN (The Institute of Scientific and Industrial Research), Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka, Japan.

J

Jianyu Huang

Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology

Q

Qiao Huang