Self‐Adapting Lattice Respiration Enabled by Crystal Design and <i>d</i> ‐ <i>p</i> Orbital Hybridization Toward Highly Stable Rechargeable Aluminum Batteries

H Huaizhi Wang (Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering) Y Yu Li B Bo Long (Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering) S Shuqiang Li X Xueying Lu (Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China) S Shijie Zhou F Feng Wu (Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering) Y Ying Bai (Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering) C Chuan Wu

Abstract

Abstract Rechargeable aluminum batteries (RABs) are promising for large‐scale energy storage due to the appealing three‐electron transfer feature, low cost, and high safety. However, the strong electrostatic interaction between Al 3+ and host lattice induces severe lattice distortion and structural collapse, leading to poor cycle stability in RABs. Herein, we develop a new‐type FeWO 4 cathode with a comprehensive consideration of the crystal structure and electronic structure. The 3D open framework and strong W─O covalent network of the FeWO 4 greatly improve the storage of high charge density Al 3+ . Moreover, the d ‐ p orbital hybridization between the transition metal and oxygen facilitates electron delocalization, which effectively weakens the interaction with the trivalent cation (Al 3+ ). Importantly, combining in situ characterizations and theoretical calculations, it is demonstrated that as‐prepared cathode exhibits a “self‐adapting lattice respiration” (SALR) effect. Specifically, the reversible W–O bond elongation/compression (Δ d  ≈ 0.05 Å) during cycling reduces lattice strain and confines volume expansion to less than 3%. As results, the FeWO 4 cathode delivers a high capacity of 192 mAh g −1 at 500 mA g −1 and long cycle life of over 2300 cycles with quiet low capacity decay of 0.01% per cycle in RABs.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

H

Huaizhi Wang

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering

Y

Yu Li

B

Bo Long

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering

S

Shuqiang Li

X

Xueying Lu

Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China

S

Shijie Zhou

F

Feng Wu

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering

Y

Ying Bai

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering

C

Chuan Wu