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粉末剥离的 MoS 纳米片具有高度单层丰富结构,可用作高性能锂/钠离子电池电极。

Powder exfoliated MoS nanosheets with highly monolayer-rich structures as high-performance lithium-/sodium-ion-battery electrodes.

机构信息

Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang 453007, PR China.

出版信息

Nanoscale. 2019 Jan 23;11(4):1887-1900. doi: 10.1039/c8nr08511k.

Abstract

Due to their low yield and easy aggregation during the electrode preparation process, exfoliated MoS2 monolayers cannot fulfill the requirements of alkali-metal-ion battery tests. Hence, we have developed a facile process to fabricate powder exfoliated MoS2 nanosheets capable of large-scale production and having highly monolayer-rich structures. This process contains two steps: liquid-phase exfoliation of the edge-rich MoS2 precursor and a freeze-drying procedure. The proposed MoS2 precursors contain rich edge fractions that are easily exfoliated by this method, and the freeze-drying procedure can maintain the unique monolayer-rich structure of MoS2 in the powder phase. The electrochemical evaluations of both lithium- and sodium-ion batteries reveal that the proposed powder exfoliated monolayer-rich MoS2 electrode exhibits remarkable specific capacities and stable cyclic performances. In particular, the monolayer-rich MoS2 nanosheet electrode delivers a superior lithium-storage capacity of ∼1400 mA h g-1. The exfoliated MoS2 nanosheet electrode can withstand over 1000 cycles even at 1 A g-1. The mechanism reveals that these unique MoS2 nanosheets not only have a large surface area but also their inclusive monolayer structures exhibit much higher charge mobility than those of bulk MoS2.

摘要

由于在电极制备过程中产量低且容易聚集,剥离的 MoS2 单层无法满足碱金属离子电池测试的要求。因此,我们开发了一种简便的方法来制备可大规模生产且具有高单层丰富结构的粉末剥离 MoS2 纳米片。该工艺包含两个步骤:边缘富 MoS2 前体的液相剥离和冷冻干燥过程。所提出的 MoS2 前体含有丰富的边缘部分,很容易通过这种方法剥离,冷冻干燥过程可以在粉末相中保持 MoS2 的独特单层丰富结构。锂和钠离子电池的电化学评估表明,所提出的粉末剥离的富含单层的 MoS2 电极表现出显著的比容量和稳定的循环性能。特别是,富含单层的 MoS2 纳米片电极提供了约 1400 mA h g-1 的优异的锂存储容量。即使在 1 A g-1 的电流密度下,剥离的 MoS2 纳米片电极也可以承受超过 1000 次循环。该机制表明,这些独特的 MoS2 纳米片不仅具有较大的表面积,而且其包含的单层结构比体相 MoS2 具有更高的电荷迁移率。

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