<i>In Situ</i> Reconstructed CuPS<sub>3</sub>-Derived Phosphorus Hybrid Anode for Ultrafast and Durable Sodium/Lithium Storage.

Gao, Yusha; Lv, Zhuoran; Zhang, Shiyu; Hu, Keyan; Lin, Tianquan; Huang, Fuqiang · Nano Lett · 2026

basic_science · Level V

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Abstract

Phosphorus (P) shows a high theoretical capacity for battery anodes but suffers from severe volume expansion (∼300%) and poor conductivity (10<sup>-14</sup> S/cm), causing rapid failure above 10 C. Herein, we propose an <i>in situ</i> self-reconstruction strategy utilizing a CuPS<sub>3</sub> precursor. During cycling, it transforms into a novel nanocomposite comprising P nanoparticles dispersed within a dual-conductive matrix of metallic Cu nanodots and ionically conductive amorphous Na<sub>2</sub>S. This synergistic architecture simultaneously mitigates volume fluctuations and accelerates electron and Na<sup>+</sup> transport. The anode delivers a high capacity of 747 mAh g<sup>-1</sup> at 0.5 A g<sup>-1</sup>, surpassing most MPS<sub>3</sub> (M = Fe, Mn, Zn) analogues. It retains ∼95% capacity over 7500 cycles at 40 A g<sup>-1</sup>, outperforming typical P-based anodes limited to 15 A g<sup>-1</sup>. Moreover, it exhibits an excellent performance in lithium-ion batteries. This work pioneers a new <i>in situ</i> constructed anode for fast-charging batteries, offering a novel approach for designing advanced alloy-type anodes.