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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Strategy for improving the visible photocatalytic H-2 evolution activity of 2D graphitic carbon nitride nanosheets through the modification with metal and metal oxide nanocomponents
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Strategy for improving the visible photocatalytic H-2 evolution activity of 2D graphitic carbon nitride nanosheets through the modification with metal and metal oxide nanocomponents

机译:用金属和金属氧化物纳米复相改性改善2D石墨碳氮化物纳米片的可见光催化H-2演化活性的策略

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摘要

The semiconductor based photocatalytic water splitting is a promising approach for the production of environmentally friendly, clean, and cost-effective hydrogen fuel by utilizing the solar energy. Graphitic carbon nitride (g-C3N4) has emerged as an excellent material to produce hydrogen via photocatalytic water splitting reactions, however the limited visible light absorption and fast charge recombination restricts the further real practical applications. Fabrication of multicomponent g-C3N4 based heterostructured photocatalytic system is an effective strategy to enhance the charge separation and thereby photocatalytic efficiency. Here, a new g-C3N4-Au-In2O3 ternary system with efficient photogenerated charge carrier separation is successfully designed. The morphology, structure, phase and electronic environments of g-C3N4, Au and In2O3 in the composite were studied by different characterization methods. As expected, the optimized g-C3N4-Au-In2O3 catalyst shows excellent photocatalytic H-2 evolution rate. The improved photocatalytic H-2 evolution rate could be attributed to the formation of heterojunctions between g-C3N4, Au and In2O3 components; improved visible light harvesting via surface plasmon resonance (SPR) effect of metal Au nanoparticles (NPs); and effective photogenerated electron-hole pairs separation. The proposed work is expected to provide a new concept to fabricate g-C3N4 based ternary heteronanostructures with metal NPs and metal oxide semiconductors not only to a photocatalytic applications but also opens up to variety of optoelectronic applications.
机译:基于半导体的光催化水分裂是通过利用太阳能来生产环保,清洁和具有成本效益的氢燃料的有希望的方法。石墨碳氮化物(G-C3N4)作为通过光催化水分裂反应产生氢的优异材料,但是有限的可见光吸收和快速电荷重组限制了进一步的实际应用。基于多组分G-C3N4的异质结构光催化系统的制备是增强电荷分离的有效策略,从而进行光催化效率。这里,成功设计了具有有效光致电荷载流子分离的新的G-C3N4-Au-In2O3三元系统。通过不同的表征方法研究了复合材料中G-C3N4,Au和In2O3的形态,结构,相和电子环境。如预期的那样,优化的G-C3N4-Au-In2O3催化剂显示出优异的光催化H-2进化率。改善的光催化H-2进化率可归因于G-C3N4,Au和In2O3组分之间的异质结;通过表面等离子体共振(SPR)对金属Au纳米粒子(NPS)的影响改进了可见光收获;和有效的光致电子 - 空穴对分离。拟议的工作预计提供了一种新的概念,用于制造基于G-C3N4的三元杂核酸结构,其不仅具有金属NP和金属氧化物半导体,不仅适用于光催化应用,而且还为各种光电应用开放。

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