Emphasizing <i>a</i> ‐parameter Expansion in Lattice Distortions of Disordered Rock Salt Li <sub>3</sub> V <sub>2</sub> O <sub>5</sub> : From Crystallographic Design to Feasible Large‐Scale Chemical Lithiation

L Lingfeng Shi (State Key Laboratory of Space Power‐Sources, School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin China) Z Ziwei Liu J Jiale An K Ke Li Y Yehang Dou (State Key Laboratory of Space Power‐Sources School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin 150001 China) S Shu Guo (Shenzhen Institute for Quantum Science and Engineering, Department of Chemistry, and Department of Physics) Y Yulin Ma G Geping Yin (School of Chemistry and Chemical Engineering) W Weiwei Meng (Key Laboratory of Functional Materials and Devices for Special Environments of CAS, Xinjiang Key Laboratory of Electronic Information Materials and Devices) H Hua Huo (State Key Laboratory of Space Power-Sources, School of Chemistry and Chemical Engineering)

Abstract

Abstract Disordered rock‐salt Li 3 V 2 O 5 (DRX‐LVO) anode exhibits distinctive 3D Li + percolation transport networks, which offers the unique advantage for ultra‐charging. However, the existing chemical lithiation preparation routes not only pose safety risks due to the use of highly reactive reagents but also inevitably result in products with poor crystallinity. Investigating the origin, impact, and strategies for crystallinity degradation is pivotal for advancing the industrialization of chemical lithiation. To address the safety issue, different lithiation reagents were evaluated from the perspective of lone electron activity, and lithium naphthalene was identified as an ideal reagent balancing safety and efficiency. Through DFT calculations, the mechanism underlying different types of distortions in the DRX system was decoupled while the distinct effects of a / b / c ‐axis variations on migration energy barriers were elucidated. Guided by theoretical insights, the a ‐axis was nominated as the critical parameter for enhancing electrochemical performance, leading to the development of Li 3 V 2 O 5 with elongated a ‐axis dimensions that exhibit significantly improved rate capabilities (80 mAh g −1 at 20 A g −1 ). This study elucidates the distortion mechanisms via exploring the correlation among chemical lithiation feasibility, lattice tuning and kernel parameter confirmation, as well as fast‐charging behavior, shedding light on precise crystallographic design on high‐performance fast‐charging anode.

Article Details

Volume / Issue Vol. 64, Issue 44
Published October 27, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

L

Lingfeng Shi

State Key Laboratory of Space Power‐Sources, School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin China

Z

Ziwei Liu

J

Jiale An

K

Ke Li

Y

Yehang Dou

State Key Laboratory of Space Power‐Sources School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin 150001 China

S

Shu Guo

Shenzhen Institute for Quantum Science and Engineering, Department of Chemistry, and Department of Physics

Y

Yulin Ma

G

Geping Yin

School of Chemistry and Chemical Engineering

W

Weiwei Meng

Key Laboratory of Functional Materials and Devices for Special Environments of CAS, Xinjiang Key Laboratory of Electronic Information Materials and Devices

H

Hua Huo

State Key Laboratory of Space Power-Sources, School of Chemistry and Chemical Engineering