High-Entropy Engineering of Cubic SiP with Metallic Conductivity for Fast and Durable Li-Ion Batteries.

Li, Wenwu; Wang, Jeng-Han; Yang, Lufeng; Li, Yanhong; Yen, Hung-Yu; Chen, Jie; He, Lunhua; Liu, Zhiliang et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

A cost-effective, scalable ball milling process is employed to synthesize the InGeSiP<sub>3</sub> compound with a cubic ZnS structure, aiming to address the sluggish reaction kinetics of Si-based anodes for Lithium-ion batteries. Experimental measurements and first-principles calculations confirm that the synthesized InGeSiP<sub>3</sub> exhibits significantly higher electronic conductivity, larger Li-ion diffusivity, and greater tolerance to volume change than its parent phases InGe (or Si)P<sub>2</sub> or In (or Ge, or Si)P. These improvements stem from its elevated configurational entropy. Multiple characterizations validate that InGeSiP<sub>3</sub> undergoes a reversible Li-storage mechanism that involves intercalation, followed by conversion and alloy reactions, resulting in a reversible capacity of 1733 mA h g<sup>-1</sup> with an initial Coulombic efficiency of 90%. Moreover, the InGeSiP<sub>3</sub>-based electrodes exhibit exceptional cycling stability, retaining an 1121 mA h g<sup>-1</sup> capacity with a retention rate of ≈87% after 1500 cycles at 2000 mA g<sup>-1</sup> and remarkable high-rate capability, achieving 882 mA h g<sup>-1</sup> at 10 000 mA g<sup>-1</sup>. Inspired by the distinctive characteristic of high entropy, the synthesis is extended to high entropy GaCu (or Zn)InGeSiP<sub>5</sub>, CuZnInGeSiP<sub>5</sub>, GaCuZnInGeSiP<sub>6</sub>, InGeSiP<sub>2</sub>S (or Se), and InGeSiPSSe. This endeavor overcomes the immiscibility of different metals and non-metals, paving the way for the electrochemical energy storage application of high-entropy silicon-phosphides.