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首页> 外文期刊>ACS applied materials & interfaces >Aqueous Cathodic Exfoliation Strategy toward Solution-Processable and Phase-Preserved MoS2 Nanosheets for Energy Storage and Catalytic Applications
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Aqueous Cathodic Exfoliation Strategy toward Solution-Processable and Phase-Preserved MoS2 Nanosheets for Energy Storage and Catalytic Applications

机译:用于溶液可加工和相位保存的MOS2纳米液的水阴极剥离策略,用于储能和催化应用

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摘要

The production of MoS2 nanosheets by electrochemical exfoliation routes holds great promise as a means to access this two-dimensional material in large quantities for different practical applications. However, the use of electrolytes based on synthetic organic salts and solvents, as well as issues related to the unwanted oxidation and/or phase transformation of the exfoliated nanosheets, constitute significant obstacles that hinder the industrial adoption of the electrochemical approach. Here, we introduce a safe and sustainable method for the cathodic delamination of MoS2 that makes use of aqueous solutions of very simple and widely available salts, mainly KCI, as the electrolyte. Combined with an appropriate biomoleculebased solvent transfer protocol, such an electrolytic exfoliation route is shown to afford colloidally dispersed, oxide-free, and phase-preserved MoS2 nanosheets of high structural quality in considerable yields. The mechanisms behind the efficient aqueous delamination of the bulk MoS2 cathode are also discussed and rationalized on the basis of the penetration of hydrated cations from the electrolyte between its layers and the immediate reduction of the accompanying water molecules. An asymmetric supercapacitor assembled with a cathodic MoS2 nanosheet single walled carbon nanotube hybrid as the positive electrode and activated carbon as the negative electrode delivered energy densities (e.g., 26 W h kg(-1) at 750 W kg(-1) in 6 M KOH) that were competitive with those of other MoS2-based asymmetric devices. When used as a catalyst for the reduction of nitroarenes, the present cathodically exfoliated nanosheets exhibited one of the highest activities reported so far with MoS2 nanostructures, the origin of which is accounted for as well. Overall, by facilitating access to this two-dimensional material through a particularly simple, efficient, and cost-effective technique, these results should expedite the practical implementation of MoS2 nanosheets in energy storage, catalysis, and beyond.
机译:通过电化学剥离路线的生产MOS2纳米片具有很大的希望,作为用于不同实际应用的大量访问该二维材料的手段。然而,基于合成有机盐和溶剂的电解质以及与不需要的氧化和/或去角质纳米片的相变相关的问题构成了阻碍了电化学方法的工业采用的显着障碍。在这里,我们介绍了一种安全和可持续的方法,用于MOS2的阴极分层,这是利用非常简单和广泛可用的盐的水溶液,主要是KCI,作为电解质。结合合适的生物重度溶剂转移方案,示出了这种电解剥离途径,以显着的产率高,具有高结构质量的胶体分散的,无氧化物和相位保存的MOS2纳米晶片。还讨论了散装MOS2阴极的有效含水分层后的机制,并基于水合阳离子从其层之间的电解质的渗透和伴随水分子的立即降低的渗透性的探讨和合理化。与阴极MOS2纳米晶片单壁碳纳米管混合组装的不对称超级电容器,作为正极和活性炭,因为负极输送能量密度(例如,在650W kg(-1)中以6米处的26Wh kg(-1) KOH)与其他基于MOS2的不对称装置的竞争竞争。当用作减少硝基甲烷的催化剂时,目前的阴极剥离纳米片显示出迄今为止报告的最高活动之一,其起源也是占的。总的来说,通过促进通过特别简单,高效和经济高效的技术访问这种二维材料,这些结果应该加快MOS2纳米电池的实际实施,催化,催化和超越。

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