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Phase Restructuring in Transition Metal Dichalcogenides for Highly Stable Energy Storage

机译:过渡金属二硫属元素化物的相重组可实现高度稳定的能量存储

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Achieving homogeneous phase transition and uniform charge distribution is essential for good cycle stability and high capacity when phase conversion materials are used as electrodes. Herein, we show that chemical lithiation of bulk 2H-MoS2 distorts its crystalline domains in three primary directions to produce mosaic-like IT' nanocrystalline domains, which improve phase and charge uniformity during subsequent electrochemical phase conversion. 1T'-Li MoS2 a macroscopic dense material with interconnected nanoscale grains, shows excellent cycle stability and rate capability in a lithium rechargeable battery compared to bulk or exfoliated-restacked MOS2. Transmission electron microscopy studies reveal that the interconnected MoS2 nanocrystals created during the phase change process are reformable even after multiple cycles of galvanostatic charging/discharging, which allows them to play important roles in the long term cycling performance of the chemically intercalated TMD materials. These studies shed light on how bulk TMDs can be processed into quasi-2D nanophase material for stable energy storage.
机译:当将相变材料用作电极时,实现均匀的相变和均匀的电荷分布对于良好的循环稳定性和高容量至关重要。在本文中,我们显示了本体2H-MoS2的化学锂化在三个主要方向上扭曲了其晶畴,从而产生了镶嵌状的IT'纳米晶畴,从而改善了随后的电化学相转化过程中的相和电荷均匀性。 1T'-Li MoS2是一种宏观致密的材料,具有相互连接的纳米级晶粒,与块状或片状堆积的MOS2相比,锂可充电电池具有出色的循环稳定性和倍率性能。透射电子显微镜研究表明,即使在多个恒电流充电/放电循环之后,在相变过程中产生的相互连接的MoS2纳米晶体也是可重整的,这使它们在化学插入TMD材料的长期循环性能中发挥重要作用。这些研究揭示了如何将大量的TMD加工成准2D纳米相材料以稳定地存储能量。

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