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Enhanced photoelectrochemical water-splitting performance of semiconductors by surface passivation layers

机译:表面钝化层增强了半导体的光电化学水分解性能

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摘要

An important approach for solving the world's sustainable energy challenges is the conversion of solar energy to chemical fuels. Semiconductors can be used to convert/store solar energy to chemical bonds in an energy-dense fuel. Photoelectrochemical (PEC) water-splitting cells, with semiconductor electrodes, use sunlight and water to generate hydrogen. Herein, recent studies on improving the efficiency of semiconductor-based solar water-splitting devices by the introduction of surface passivation layers are reviewed. We show that passivation layers have been used as an effective strategy to improve the charge-separation and transfer processes across semiconductor–liquid interfaces, and thereby increase overall solar energy conversion efficiencies. We also summarize the demonstrated passivation effects brought by these thin layers, which include reducing charge recombination at surface states, increasing the reaction kinetics, and protecting the semiconductor from chemical corrosion. These benefits of passivation layers play a crucial role in achieving highly efficient water-splitting devices in the near future.
机译:解决世界可持续能源挑战的一种重要方法是将太阳能转化为化学燃料。半导体可用于将能量转换/存储为能量密集型燃料中的化学键。具有半导体电极的光电化学(PEC)水分解池利用阳光和水产生氢。本文中,综述了通过引入表面钝化层来提高基于半导体的太阳能水分解装置的效率的最新研究。我们表明,钝化层已被用作一种有效的策略,以改善半导体-液体界面之间的电荷分离和转移过程,从而提高了总体太阳能转换效率。我们还总结了这些薄层带来的已证明的钝化效应,包括减少表面态的电荷复合,增加反应动力学以及保护半导体免受化学腐蚀。钝化层的这些优点在不久的将来对实现高效的水分解装置起着至关重要的作用。

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