Tuning Reaction Pathways via Symmetric Fluorination Enables High‐Temperature and High‐Voltage Electrolytes

F Fangyuan Cheng (State Key Laboratory of Microbial Technology) W Wen Zhang C Chun Fang (State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering) Y Yameng Fan (School of Science) Z Zhenxiang Cheng C Changhong Wang X Xiaona Li (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery) J Jiamin Fu S Shuo Wang W Weihan Li X Xueliang Sun J Jian Peng

Abstract

ABSTRACT Ni‐rich layered oxide cathodes deliver high capacity, but they suffer from severe interfacial instability and thermal safety risks when operated at high voltages and elevated temperatures. Here we propose an electrolyte design strategy based on molecular fluorination symmetry. This approach employs difluoro‐symmetric substitution to precisely steer decomposition pathways towards preferential ring‐opening reactions, thereby effectively suppressing defluorination decomposition and the concomitant formation of acidic byproducts at elevated temperatures. Through rational molecular engineering of synergistic fluorination, we achieve directed interfacial chemistry control. Under harsh operational conditions (4.5 V, 45°C), the modified cells retain 83% of their capacity after 300 cycles, along with significantly reduced gas generation and an elevated thermal runaway onset temperature. Furthermore, 2 Ah graphite||LiNi 0.8 Co 0.1 Mn 0.1 O 2 pouch cells exhibit a capacity retention of 90% after 480 cycles at 45°C and 91% after 200 cycles at 60°C. These results establish molecular fluorination symmetry as a practical design principle for electrolytes that enhance high‐temperature performance and intrinsic safety in Ni‐rich cathodes under demanding operational conditions.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

F

Fangyuan Cheng

State Key Laboratory of Microbial Technology

W

Wen Zhang

C

Chun Fang

State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering

Y

Yameng Fan

School of Science

Z

Zhenxiang Cheng

C

Changhong Wang

X

Xiaona Li

Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery

J

Jiamin Fu

S

Shuo Wang

W

Weihan Li

X

Xueliang Sun

J

Jian Peng