Functional modules for enhanced amorphous composite halide solid electrolytes for low-temperature all-solid-state lithium batteries

Y Yanlong Wu (National Power Battery Innovation Center) X Xinmiao Wang (GRINM (Guangdong) Institute for Advanced Materials and Technology) X Xingyu Wang (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery) Y Yulong Cai (GRINM (Guangdong) Institute for Advanced Materials and Technology) J Junyi Yue S Simeng Zhang X Xiangzhen Zhu (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery) S Shanshan Wang (College of Integrated Circuits and Micro-Nano Electronics) M Meng Li X Xu Han Y Yi Duan C Changtai Zhao (National Power Battery Innovation Center) R Rong Yang J Jianwen Liang X Xiaona Li (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All-Solid-State Battery, Zhejiang Key Laboratory of All-Solid-State Battery) X Xueliang Sun J Jiantao Wang (National Power Battery Innovation Center)

Abstract

Abstract Solid-state electrolytes (SSEs) are the essential component of all-solid-state batteries (ASSBs). Designing better SSEs holds the key to the success of the ASSBs. Here, this study effectively realises the design of SSEs through functional modules. Various functional designs have been achieved by incorporating different functional models. Here, we initially introduce LaCl 3 , which possesses a UCl 3 structure, as a functional module to demonstrate the feasibility of our approach. The Li 2 O-1.8TaCl 5 -0.2LaCl 3 (LTLOC) SSE enable the ASSB with LiNi 0.88 Co 0.09 Mn 0.03 O 2 (NCM88) to exhibit stable cycling and stable operation at low temperature (−30 °C). Additionally, various types of functional modules, including chloride, oxide, and fluoride, have been successfully introduced, further supporting the universality of amorphous functional module design. Furthermore, the incorporation of low-cost and low-density AlF 3 highlights the benefits of this design approach, as it allows for a high proportion of fluoride to be introduced without compromising ionic conductivity. Li 2 O-1.8TaCl 5 -5AlF 3 (LTOC-5AlF 3 ) exhibits stability in humid conditions, resistance to high voltage, and compatibility with lithium metal simultaneously. The key strength of this design approach is its ability to maintain advantages and make up for the shortcomings.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 27, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

Y

Yanlong Wu

National Power Battery Innovation Center

X

Xinmiao Wang

GRINM (Guangdong) Institute for Advanced Materials and Technology

X

Xingyu Wang

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

Y

Yulong Cai

GRINM (Guangdong) Institute for Advanced Materials and Technology

J

Junyi Yue

S

Simeng Zhang

X

Xiangzhen Zhu

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

S

Shanshan Wang

College of Integrated Circuits and Micro-Nano Electronics

M

Meng Li

X

Xu Han

Y

Yi Duan

C

Changtai Zhao

National Power Battery Innovation Center

R

Rong Yang

J

Jianwen Liang

X

Xiaona Li

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

X

Xueliang Sun

J

Jiantao Wang

National Power Battery Innovation Center