Cation‐Anion‐Engineering Modified Oxychloride Zr‐Based Lithium Superionic Conductors for All‐Solid‐State Lithium Batteries

Z Zongnan Li (Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China) Y Yongbiao Mu (Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering) K Kunxi Lü (Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China) G Guojian Kang (Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China) T Ting Yang (Key Laboratory for Soft Chemistry and Functional Materials of Ministry Education, School of Chemistry and Chemical Engineering) S Shuping Huang M Mingdeng Wei L Lin Zeng (Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering) Y Yafeng Li (Children’s Medical Center Research Institute and Department of Pediatrics, University of Texas Southwestern Medical Center)

Abstract

AbstractWithin the family of halide solid electrolytes (SEs), Li2ZrCl6 demonstrates high oxidative stability, cost‐effectiveness, and mechanical deformability, positioning it as a promising candidate for SEs. However, the application of Li2ZrCl6 as a SEs was hindered by its low ionic conductivity at room temperature. Current strategies to enhance the ionic conductivity of Li2ZrCl6 primarily are focused on single cation or anion sublattice‐engineering, each with distinct advantages and limitations. Here, we propose a novel cation and anion‐sublattice‐engineering strategy, termed CASE, to increase the amorphous content and thus enhance ionic conductivity. The incorporation of Cu2+ and O2− induces distinctive structural modifications within Li2ZrCl6. This structure corroborated through analytic data of X‐ray absorption spectroscopy, the neutron diffraction, and ab initio molecular dynamics. Consequently, the amorphous Li2.1Zr0.95Cu0.05Cl4.4O0.8 achieves an enhanced ionic conductivity of 2.05 mS cm−1 at 25 °C. Furthermore, all‐solid‐state lithium batteries utilizing the amorphous Li2.1Zr0.95Cu0.05Cl4.4O0.8 as an electrolyte and LiNi0.83Co0.11Mn0.06O2 as a cathode exhibit a superior long‐term cycling stability retaining 90.3% of capacity after 1000 cycles at 2 C under room temperature, which are much higher than those of Zr‐based halide electrolytes in publications. Such a result might stimulate the development of more amorphous structures with high ionic conductivity in the CASE strategy.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Z

Zongnan Li

Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China

Y

Yongbiao Mu

Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering

K

Kunxi Lü

Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China

G

Guojian Kang

Fujian Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou 350116 China

T

Ting Yang

Key Laboratory for Soft Chemistry and Functional Materials of Ministry Education, School of Chemistry and Chemical Engineering

S

Shuping Huang

M

Mingdeng Wei

L

Lin Zeng

Shenzhen Key Laboratory of Advanced Energy Storage, Department of Mechanical and Energy Engineering

Y

Yafeng Li

Children’s Medical Center Research Institute and Department of Pediatrics, University of Texas Southwestern Medical Center