AlF 3 ‐Enriched Interphase Design Enables Comprehensive Electrochemical Performance Enhancement in Al‐Ion Batteries

ABSTRACT Aluminum‐ion batteries (AIBs) are promising for large‐scale energy storage owing to their elemental abundance, low cost, safety, and high anode capacity. However, their development is hindered by the limited reversibility of Al plating/stripping on Al metal anodes and cathode structural degradation under high‐voltage operation, resulting in short cycle life and limited energy density. These challenges originate from an incomplete understanding of how interphase components and properties regulate electrode reactions. Here, we systematically investigate the interphase properties in AIBs and reveal that AlF 3 exhibits the highest interfacial energy, mechanical strength against dendrite growth, and electrochemical stability with electron‐blocking capability against parasitic reactions, making it an ideal artificial interphase component. Based on these findings, AlF 3 ‐enriched artificial interphases are constructed in Al||graphene batteries, enabling 99.9% Al plating/stripping Coulombic efficiency with uniform deposition morphology. The Al||graphene full cell delivers a high specific capacity of 122.6 mAh g −1 , ultrahigh‐rate capability (817 C, charged in 2.936 s), and long‐term cyclability exceeding 100 000 cycles. This AlF 3 ‐enriched interphase strategy establishes fundamental principles for designing high‐performance AIBs.

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Journal
Advanced Materials
Published
2026-10-05
DOI
https://doi.org/10.1002/adma.75287
Primary Topic
Advanced battery technologies research
Type
article
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article

AlF 3 ‐Enriched Interphase Design Enables Comprehensive Electrochemical Performance Enhancement in Al‐Ion Batteries

Yaoyao Liu, Yuanhua Sang, Lequan Deng, Haoying Qi et al.
Advanced Materials
Advanced battery technologies research
article

AlF 3 ‐Enriched Interphase Design Enables Comprehensive Electrochemical Performance Enhancement in Al‐Ion Batteries

Yaoyao Liu, Yuanhua Sang, Lequan Deng, Haoying Qi, Hao Chen, Hong Liu, Yi-Xiang Wang, Yushuang Yang, Haichen Huang, Xianglin Yin, Xingmin Yu
article en

Abstract

ABSTRACT Aluminum‐ion batteries (AIBs) are promising for large‐scale energy storage owing to their elemental abundance, low cost, safety, and high anode capacity. However, their development is hindered by the limited reversibility of Al plating/stripping on Al metal anodes and cathode structural degradation under high‐voltage operation, resulting in short cycle life and limited energy density. These challenges originate from an incomplete understanding of how interphase components and properties regulate electrode reactions. Here, we systematically investigate the interphase properties in AIBs and reveal that AlF 3 exhibits the highest interfacial energy, mechanical strength against dendrite growth, and electrochemical stability with electron‐blocking capability against parasitic reactions, making it an ideal artificial interphase component. Based on these findings, AlF 3 ‐enriched artificial interphases are constructed in Al||graphene batteries, enabling 99.9% Al plating/stripping Coulombic efficiency with uniform deposition morphology. The Al||graphene full cell delivers a high specific capacity of 122.6 mAh g −1 , ultrahigh‐rate capability (817 C, charged in 2.936 s), and long‐term cyclability exceeding 100 000 cycles. This AlF 3 ‐enriched interphase strategy establishes fundamental principles for designing high‐performance AIBs.

Advanced Materials
Shandong University (CN), University of Jinan (CN), City University of Hong Kong, Shenzhen Research Institute (CN), Jinan Institute of Quantum Technology (CN), State Key Laboratory of Crystal Materials
Openalex Percentile: Top 22%
Advanced battery technologies research
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