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Phosphorus-Induced Charge Redistribution and Lattice Self-Regulation in Cu3PSe4 Enables Low N/P Ratio and Durable
Song Huang1,2, Zuyang Hu1, Xiaoli He1
1School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, P.R. China.
Abstract:
Zn-I2 batteries is a promising large-scale energy storage technology, yet conventional Zn metal anode faces challenges including corrosion, dendrite growth, and side reactions, hindering its practical application. Zn2+ host anodes, leveraging the rocking-chair mechanism and inherent polyiodide inertness, offer a potential solution to these issues. However, existing host anodes suffer from sluggish Zn2+ kinetics and low capacity, limiting their compatibility with cathodes. Herein, we report a unique charge and lattice self-regulation mechanism in Cu3PSe4 that drives expedited Zn2+ transport and high-capacity performance. In this configuration, Cu3PSe4 in situ decomposes to P and Cu2Se during initial cycling and Cu2Se provide subsequent capacity. Importantly, phosphorus modulates the Cu2Se lattice, inducing a transition from conventional contraction to expansion during Zn2+ insertion, thereby enhancing ion transport kinetics and capacity simultaneously. Theoretical calculations reveal that P reconfigures the charge distribution and spatial configuration in Cu2Se, reducing Zn2+ diffusion barrier. Consequently, the optimized Cu3PSe4 anode delivers 150.5 mAh g-1 at 20 A g-1, and the assembled Cu3PSe4||I2 cell achieves an exceptional lifespan of 30,000 cycles at 9 mg cm-2 with a low N/P ratio of 1.1, demonstrating superior stability. This work provides a novel system of corrosion-resistant anode for high-performance and metal-zinc-free zinc-iodine batteries.
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