Xunzhu Zhou, Xiaoyan Shi, Yun Wan, Longhai Zhang, Sen Hu, Chaofeng Zhang, Shulei Chou, Fujun Li, Lin Li
Aqueous zinc metal batteries are promising for energy storage, yet their application is constrained by the thermodynamic instability of Zn anodes. A deep understanding of interfacial evolution including initial nucleation and dendrite growth is crucial to guide electrochemical performance optimization, while real-time characterization remains a major technical hurdle. Herein, a homemade Cr-modified zinc foil (Zn@Cr) is designed as the working electrode for in situ electrochemical atomic force microscopy (AFM), enabling real-time visualization of initial nucleation and subsequent plating/stripping morphology evolution from the nano- to micrometer scale. The zincophilic Cr coating promotes uniform nucleation and forms a ZnCr interphase via in situ alloying at the early stage of electrodeposition, which functions as a physical barrier against electrolyte corrosion and preserves structural integrity during cycling. Consequently, Zn@Cr symmetric cells deliver ultralow nucleation overpotential and prolonged cycling stability, completely free of Zn dendrites. This work not only demonstrates an effective alloying-based interfacial strategy for stabilizing zinc anodes but also highlights the capability of in situ AFM in revealing dynamic interfacial evolution.