Overcoming Passivation-Corrosion Dilemma of Al Current Collector for Aqueous Zn Battery.

Meng, Zixiang; Zou, Yuhan; Chen, Jiashu; Mu, Yongbiao; Li, Yan; Wang, Yuyuan; Liu, Qian; Yi, Yuyang et al. · ACS Nano · 2026

basic_science · Level V

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Abstract

Al current collectors are widely adopted in nonaqueous batteries because of their low cost, high conductivity, and low density, yet their deployment in aqueous congeners (i.e., Zn-ion batteries) is largely precluded by concurrent issues of surface passivation and electrolyte-driven corrosion. Here, an on-site N-doped carbon-skinned Al current collector (NC@Al) is developed to resolve this longstanding dilemma. Enabled by an ultrafast Joule heating process, elevated temperature carbonization could be completed in seconds without thermally deforming the Al substrate, which renders a dense and continuous double-sided NC overlayer, affording favorable interfacial adhesion. Combined theoretical calculations and experimental diagnostics verify the NC overlayer simultaneously helps suppress the Al passivation-corrosion issue and promote uniform Zn deposition. As a result, symmetric cells based on NC@Al exhibit durable cycling beyond 3500 h at 0.5 mA cm<sup>-2</sup>/0.25 mAh cm<sup>-2</sup>. When paired with an iodine cathode, our constructed pouch cells with an active material loading of 25 mg cm<sup>-2</sup> sustain stable operation for 1000 cycles under a stringent N/P ratio of 1.77. Technoeconomic analysis further highlights the energy-efficiency advantage of our route in practical manufacturing. This work establishes a strategy for employing commercially available Al current collector materials toward aqueous batteries.