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Bimetallic sulfide NiCo2S4 yolk–shell nanospheres as high-performance cathode materials for rechargeable magnesium batteries

机译:双金属硫化物NiCo2S4 yolk-shell团簇随着高性能阴极材料镁可充电电池

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摘要

Constructing bimetallic sulfides with ideal structures could effectively alleviate the poor cycling stability of rechargeable Mg batteries due to a bimetallic synergistic effect. An exquisite yolk–shell structured bimetallic sulfide NiCo2S4 synthesized via a two-step solvothermal hydrothermal method is investigated as a cathode material for rechargeable Mg batteries. With the bimetallic strategy and well-designed architecture, the as-synthesized yolk–shell NiCo2S4 exhibits outstanding Mg-storage performance, demonstrating a superior reversible capacity (270 mA h g−1 at 50 mA h g−1), a high rate capability, and a specific capacity retention of 91% over 400 cycles (2.2% capacity decay per cycle). The in-depth mechanism investigation reveals the two-step conversion reaction process and the bimetallic synergistic effect in the Mg-storage process. Based on DFT calculations and kinetic investigations, the bimetallic synergistic effect effectively alleviates the Jahn–Teller effect and distortion in the crystal lattices and increases active reaction sites, thus largely enhancing the electrochemical Mg-storage performance. The superior electrochemical performance of NiCo2S4 not only demonstrates the viability of the bimetallic strategy but also sheds light on the use of nanostructure design for high-performance cathode research.
机译:构建双金属硫化物与理想结构能有效地减轻穷人骑自行车可充电Mg电池的稳定性由于双金属协同效应。精致yolk-shell结构化双金属硫化NiCo2S4通过两步合成solvothermal水热方法研究作为可充电的阴极材料毫克电池。精心设计的建筑,as-synthesizedyolk-shell NiCo2S4展品突出Mg-storage性能,证明一个优越可逆容量(270 mA h g−1马在50 h克−1),高速率的能力,一个特定的在400年周期(2.2%容量保留91%每个循环容量衰减)。调查揭示了两步转换反应过程和双金属协同Mg-storage过程的影响。计算和动态调查,双金属协同效应有效地减轻姜泰勒效应和畸变在晶体晶格,增加活跃反应网站,从而很大程度上提高电化学Mg-storage性能。NiCo2S4优越的电化学性能不仅证明了可行性也揭示了双金属策略使用高性能纳米结构设计阴极的研究。

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