ABSTRACT The development of robust Zn anodes is often constrained by the thermodynamic trade‐off between zincophilicity and hydrogen evolution reaction (HER) suppression. Herein, this work proposes a facile one‐step pyrolysis strategy utilizing metal‐ion‐adsorbed metal organic framework (MOF) precursors to construct a series of Zn metal alloys encapsulated in nitrogen‐doped carbon foams (ZnM@NCF). Theoretical simulations and experimental verifications demonstrate that the ZnBi@NCF layer uniquely optimizes the trade‐off derived from the linear scaling relationship of charge transfer, achieving an optimal balance between strong Zn interactions for uniform deposition and minimized H interactions for HER suppression. Furthermore, the conductive N‐doped framework and rigid hydrophobic structure provide synergistic electrochemical regulation and physical protection. Consequently, the optimized ZnBi@NCF anode exhibits superior stability, sustaining over 3600 cycles at an ultrahigh current density of 80 mA cm −2 with a Coulombic efficiency of 99.9%. Symmetric cells exhibit filling‐type Zn deposition behavior and can withstand a deep discharge of 85.7%. This work elucidates the intrinsic competition in surface adsorption and provides a new avenue for the design of highly stable metal anodes in aqueous batteries.
Chen et al. (2026) studied this question.
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