首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >In situ fabrication of 1D CdS nanorod/2D Ti3C2 MXene nanosheet Schottky heterojunction toward enhanced photocatalytic hydrogen evolution
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In situ fabrication of 1D CdS nanorod/2D Ti3C2 MXene nanosheet Schottky heterojunction toward enhanced photocatalytic hydrogen evolution

机译:原位制造1D CDS纳米棒/ 2D Ti3C2 MXENE NANOSHEAT肖特基异质结朝增强的光催化氢进化

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摘要

Benefiting from excellent metallic conductivity, full-spectrum solar energy absorption and rich active sites on the surface, atomically thin two-dimensional transition metal carbide (2D NiXene) shows great promise in improving solar-to-hydrogen efficiency and has drawn intense interest in the field of photocatalysis. However, controllable construction of ultrathin 2D MXene-based heterojunction photocatalysts still remains a significant challenge. Herein, one-dimensional (1D) CdS nanorod/2D MXene nanosheet heterojunctions with well-defined nanostructures and strong interfacial coupling are fabricated by in situ assembling solvothermally-generated CdS nanorods on ultrathin Ti3C2 MXene nanosheets. Due to their specific interface characteristics, 1D/2D Schottky heterojunction is capable of providing accelerated charge separation and a lower Schottky barrier for solar-driven hydrogen evolution from water splitting. As expected, the Schottky-based photocatalyst is 7-fold more active in the illuminated hydrogen evolution reaction (HER) than pristine CdS nanorods, implying the synergistic effects between n-type semiconductor CdS and highly conductive 2D Ti3C2 MXene nanosheets.
机译:受益于优异的金属导电性,表面上的全谱太阳能吸收和丰富的活性位点,原子上薄的二维过渡金属碳化物(2D尼克藤)在提高太阳能氢效率并对较大的兴趣引起了强烈的兴趣光催化领域。然而,基于超薄的超薄杂交函数光催化剂的可控结构仍然是一个重大挑战。这里,通过在超薄Ti3C2 mxene纳米液上的原位组装溶剂热产生的CDS纳米块制备具有明确定义的纳米结构和强界面耦合的一维(1D)Cds纳米孔/ 2D mxOn纳米晶片杂交型。由于其特定的界面特性,1D / 2D肖特基异质结具有从水分裂的太阳驱动氢进化的加速电荷分离和下肖特基屏障。正如预期的那样,肖特基的光催化剂比原始CDS纳米棒在照明的氢气进化反应(她)中更活跃,暗示了n型半导体CD和高导电2D Ti3C2 MxEne纳米片之间的协同效应。

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