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Nanoscale heterostructures for photoelectrochemical water splitting and photodegradation of pollutants

机译:用于光电化学水分解和污染物光降解的纳米异质结构

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Rapid depletion of fossil fuels, surging demands for energy and concerns for environment have inspired the exploration of renewable energy sources including solar energy. Efficient utilization of solar energy mainly relies on the discovery of materials with superior electronic and optical properties for effective light-matter interaction. These materials should have suitable band gap energies for visible light absorption and appropriate band edge locations for generation, rapid transfer and suppressed recombination of charge carriers. Heterostructuring of multiple materials with controlled interfaces and spatial configuration is critical to meet these requirements and holds potential for applications such as photoelectrochemical water splitting. This review article focuses on fundamentals of nanoscale heterostructures and four types of charge transfer/separation mechanisms: charge dissipation through conductive path, charge separation through plasmonic nanoparticles, sensitization of wide band gap semiconductors and charge separation through staggered band gap. Other aspects such as large surface area and multifunctionality from heterostructuring are also discussed. Finally, characterization techniques for understanding photocatalytic activity, charge transfer and band gap energy of the nanoscale heterostructures are described.
机译:化石燃料的迅速枯竭,对能源的需求激增以及对环境的关注激发了对包括太阳能在内的可再生能源的探索。太阳能的有效利用主要取决于发现具有优异电子和光学性能的材料,以实现有效的光-物质相互作用。这些材料应具有合适的能带隙能量以吸收可见光,并具有合适的能带边缘位置以产生,快速转移并抑制载流子的重组。具有受控界面和空间配置的多种材料的异质结构对于满足这些要求至关重要,并具有光化学水分解等应用的潜力。本文将重点介绍纳米级异质结构的基本原理和四种类型的电荷转移/分离机理:通过导电路径的电荷耗散,通过等离子体纳米粒子的电荷分离,宽带隙半导体的敏化以及交错带隙的电荷分离。还讨论了其他方面,例如大表面积和异质结构带来的多功能性。最后,描述了用于理解纳米级异质结构的光催化活性,电荷转移和带隙能的表征技术。

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