首页> 外文期刊>Applied Surface Science >Ultra-small cobalt nanocrystals embedded in 2D-MoS_2 nano-sheets as efficient co-catalyst for solar-driven hydrogen production: Study of evolution rate dependence on cobalt nanocrystal size
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Ultra-small cobalt nanocrystals embedded in 2D-MoS_2 nano-sheets as efficient co-catalyst for solar-driven hydrogen production: Study of evolution rate dependence on cobalt nanocrystal size

机译:嵌入2D-MoS_2纳米片中的超小型钴纳米晶体,作为太阳能驱动制氢的有效助催化剂:演化速率对钴纳米晶体尺寸的依赖性研究

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2D-MoS2 nanostructures are attractive co-catalysts for photocatalytic hydrogen evolution due to their suitable water reduction potentials and high stability. However, the catalytic activity of MoS2 is greatly limited by the catalytically inert basal planes. Doping of transition-metal ions into MoS2 structure is an effective way to activating the basal planes. To this end, the formation of size-controlled metal nanocrystals with clean surface and mono dispersed nature is a current challenge. Here we utilized pulsed laser ablation in liquid approach to generate high purity size controlled cobalt nanocrystal by adjusting the laser fluences and systematically evaluate the effect of cobalt nanocrystals size and concentration on MoS2 to activate the basal planes. A set of CoMoS2/CdS nanorods with different cobalt size were examined, and an optimal cobalt size of 3.1 nm was obtained. The optimized CdS/Co-MoS2 nanocomposite showed a very high H-2 production rate (275 mmol h(-1) g(-1)) with outstanding stability. To the best of our knowledge, this is the best performance reported for CdS/MoS2 based nanocomposites. The remarkable hydrogen evolution rate and stability may be due to reduced recombination rate and greatly increased density of catalytic active sites which is determined by photoluminescence and impedance spectroscopy. Finally, we believe that the strategies applied in the present study to form robust photocatalysts and its utilization in solar driven hydrogen production would inspire the development of other low-cost photocatalysts for renewable fuel production.
机译:2D-MoS2纳米结构因其合适的减水潜力和高稳定性而成为光催化制氢的有吸引力的助催化剂。但是,MoS2的催化活性受到催化惰性基面的极大限制。将过渡金属离子掺杂到MoS2结构中是激活基面的有效方法。为此,形成具有清洁表面和单分散性质的尺寸受控的金属纳米晶体是当前的挑战。在这里,我们利用脉冲激光烧蚀在液体中通过调整激光能量密度来产生高纯度尺寸受控的钴纳米晶体,并系统地评估了钴纳米晶体的尺寸和浓度对MoS2活化基面的影响。检查了一组具有不同钴尺寸的CoMoS2 / CdS纳米棒,并获得了3.1 nm的最佳钴尺寸。优化的CdS / Co-MoS2纳米复合材料显示出非常高的H-2生产率(275 mmol h(-1)g(-1)),具有出色的稳定性。据我们所知,这是基于CdS / MoS2的纳米复合材料的最佳性能。显着的氢释放速率和稳定性可能是由于降低的重组速率和大大增加的催化活性位点密度所致,这是由光致发光和阻抗谱确定的。最后,我们认为,本研究中形成结实的光催化剂的策略及其在太阳能驱动制氢中的应用将激发其他低成本光催化剂用于可再生燃料生产的发展。

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