Flame-retardant electrolytes with electrochemically-inert and weakly coordinating dichloroalkane diluents for practical lithium metal batteries

Z Zhicheng Wang (Beijing Advanced Innovation Center for Materials Genome Engineering Key Laboratory for Renewable Energy, Beijing Key Laboratory for New Energy Materials and Devices, Institute of Physics) H Haifeng Tu (School of Nano-Tech and Nano-Bionics) X Xingdong Ma (Tianmu Lake Institute of Advanced Energy Storage Technologies Co., Ltd.) S Suwan Lu (School of Nano-Tech and Nano-Bionics) G Guirong Su Y Yiwen Gao J Jiangyan Xue (School of Nano-Tech and Nano-Bionics) L Lingwang Liu (School of Nano-Tech and Nano-Bionics) X Xu Yao K Kun Liang K Ke Wang (Tianjin Medical University Cancer Institute and Hospital Tianjin China) F Fengrui Zhang Z Zhifeng Qin J Jieyun Zheng Q Qing Wang J Jingjing Xu L Liquan Chen (Beijing Frontier Research Center on Clean Energy) H Hong Li X Xiaodong Wu (School of Nano-Tech and Nano-Bionics)

Abstract

Abstract The next-generation of lithium metal batteries urgently require electrolytes that simultaneously possess low-cost, high-safety, wide-temperature operating range, high electrochemical stability and good electrode-electrolyte interphases formation ability. Here we present a flame-retardant electrolyte by introducing electrochemically-inert and weakly coordinating dichloroalkane diluents in triethyl phosphate-based high-concentration electrolyte. We systematically investigate the effects of dichloroalkane diluents with diverse carbon chain lengths on the Li + solvation structure, redox behavior, and lithium metal interfacial chemistry in the electrolyte. Consequently, 1,3-dichloropropane, which shows the favorable electrochemical inertness, weakly coordinating ability and wide liquid temperature range (−99 to +120 °C), is chosen as an ideal diluent in electrolyte to form robust anions-derived inorganic-rich electrode-electrolyte interphases on electrodes and improve the Li + transport/de-solvation capability. The developed electrolyte exhibits significant improvement in safety, cycling stability, rate capability and wide temperature operation capability of high-voltage lithium metal batteries. Particularly, the practical Li (50 μm)||LiNi 0.83 Co 0.12 Mn 0.05 O 2 (NCM83, 5.6 mAh cm −2 ) pouch cells exhibit stable cycling performance over 100 cycles with a high capacity retention rate of 94.1% at 0.1 C charge/0.2 C discharge under 25 °C, and deliver a promising application potential within a broad temperature range of −60 to +60 °C.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 19, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

Z

Zhicheng Wang

Beijing Advanced Innovation Center for Materials Genome Engineering Key Laboratory for Renewable Energy, Beijing Key Laboratory for New Energy Materials and Devices, Institute of Physics

H

Haifeng Tu

School of Nano-Tech and Nano-Bionics

X

Xingdong Ma

Tianmu Lake Institute of Advanced Energy Storage Technologies Co., Ltd.

S

Suwan Lu

School of Nano-Tech and Nano-Bionics

G

Guirong Su

Y

Yiwen Gao

J

Jiangyan Xue

School of Nano-Tech and Nano-Bionics

L

Lingwang Liu

School of Nano-Tech and Nano-Bionics

X

Xu Yao

K

Kun Liang

K

Ke Wang

Tianjin Medical University Cancer Institute and Hospital Tianjin China

F

Fengrui Zhang

Z

Zhifeng Qin

J

Jieyun Zheng

Q

Qing Wang

J

Jingjing Xu

L

Liquan Chen

Beijing Frontier Research Center on Clean Energy

H

Hong Li

X

Xiaodong Wu

School of Nano-Tech and Nano-Bionics