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首页> 外文期刊>Scientific reports. >Cu2ZnSnS4/MoS2-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation
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Cu2ZnSnS4/MoS2-Reduced Graphene Oxide Heterostructure: Nanoscale Interfacial Contact and Enhanced Photocatalytic Hydrogen Generation

机译:Cu 2 ZnSnS 4 / MoS 2 还原的氧化石墨烯异质结构:纳米级界面接触和增强的光催化氢生成

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Hydrogen generation from water using noble metal-free photocatalysts presents a promising platform for renewable and sustainable energy. Copper-based chalcogenides of earth-abundant elements, especially Cu2ZnSnS4 (CZTS), have recently arisen as a low-cost and environment-friendly material for photovoltaics and photocatalysis. Herein, we report a new heterostructure consisting of CZTS nanoparticles anchored onto a MoS2-reduced graphene oxide (rGO) hybrid. Using a facile two-step method, CZTS nanoparticles were in situ grown on the surface of MoS2-rGO hybrid, which generated high density of nanoscale interfacial contact between CZTS and MoS2-rGO hybrid. The photoexcited electrons of CZTS can be readily transported to MoS2 through rGO backbone, reducing the electron-hole pair recombination. In photocatalytic hydrogen generation under visible light irradiation, the presence of MoS2-rGO hybrids enhanced the hydrogen production rate of CZTS by 320%, which can be attributed to the synergetic effect of increased charge separation by rGO and more catalytically active sites from MoS2. Furthermore, this CZTS/MoS2-rGO heterostructure showed much higher photocatalytic activity than both Au and Pt nanoparticle-decorated CZTS (Au/CZTS and Pt/CZTS) photocatalysts, indicating the MoS2-rGO hybrid is a better co-catalyst for photocatalytic hydrogen generation than the precious metal. The CZTS/MoS2-rGO system also demonstrated stable photocatalytic activity for a continuous 20?h reaction.
机译:使用不含贵金属的光催化剂从水中产生氢为可再生和可持续能源提供了有希望的平台。近年来,作为一种低成本且对环境友好的光伏和光催化材料,已出现了富含稀土元素的铜基硫属元素化物,尤其是Cu 2 ZnSnS 4 (CZTS) 。在这里,我们报告了一种新的异质结构,该结构由锚定在MoS 2 还原的氧化石墨烯(rGO)杂化物上的CZTS纳米颗粒组成。使用简便的两步法,在MoS 2 -rGO杂化体的表面上原位生长CZTS纳米颗粒,从而在CZTS和MoS 2 -rGO混合。 CZTS的光激发电子可以很容易地通过rGO主链传输到MoS 2 ,从而减少了电子-空穴对的重组。在可见光照射下光催化制氢中,MoS 2 -rGO杂化物的存在使CZTS的产氢率提高了320%,这可以归因于rGO和MoS 2 具有更多的催化活性位点此外,这种CZTS / MoS 2 -rGO异质结构显示出比Au和Pt纳米粒子修饰的CZTS(Au / CZTS和Pt / CZTS)光催化剂都高得多的光催化活性,表明MoS 2 < / sub-rGO杂化物比贵金属是用于光催化制氢的更好的助催化剂。 CZTS / MoS 2 -rGO系统在连续20h反应中也表现出稳定的光催化活性。

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