Understanding and Designing Lithiophilic Alloyed Metal Anodes for Practical Metal Batteries
Abstract
ABSTRACT Lithiophilic alloyed metal anodes (LAMAs) are emerging as a transformative platform for enabling practical Li metal batteries. By harnessing alloy chemistry, LAMAs combine favorable Li nucleation and growth behavior, robust interfacial chemistry, and mechanical integrity, thereby mitigating the long‐standing challenges of manufacturability and cycling stability that have hindered large‐scale deployment of Li metal anodes. Nevertheless, a unifying framework that quantitatively defines lithiophilicity, the central design parameter of LAMAs, remains underdeveloped. This review establishes a descriptor‐based paradigm to systematically elucidate lithiophilicity, bridging empirical observations with thermodynamic, kinetic, and electronic‐structure descriptors, while also addressing the temporal stability of lithiophilic interfaces. Building upon these insights, we critically analyze state‐of‐the‐art strategies for designing and fabricating LAMAs, including alloy‐embedded architectures, interfacial engineering approaches, modified current collector substrates, Li‐free anode concepts, and all‐solid‐state configurations. We conclude by outlining key research opportunities and design principles that couple materials chemistry, interfacial science, and scalable manufacturing, aiming to accelerate the rational development of LAMAs for high‐energy, industrially viable Li metal batteries.
Article Details
Authors (10)
Qingyang Yin
School of Chemical Science and Engineering Institute for Advanced Studies Tongji University Shanghai China
Mue Tang
School of Chemical Science and Engineering Institute for Advanced Studies Tongji University Shanghai China
Qian Liu
Zhen Geng
Institute of Molecular Functional Materials Department of Chemistry The University of Hong Kong Hong Kong P.R. China
Wenming Dai
College of Control Science and Engineering Zhejiang University Zhejiang China
Zheng Chen
Yunfeng Lu
Jinhu Yang
China-Australia Joint Research Center for Functional Molecular Materials, School of Chemical Science and Engineering
Chi Zhang
Li Shen