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TiO2/Cu2O composite based on TiO2 NTPC photoanode for photoelectrochemical (PEC) water splitting under visible light

机译:基于TiO2 NTPC光阳极的TiO2 / Cu2O复合材料,用于可见光下光电化学(PEC)的水分解

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摘要

Water splitting through photoelectrochemical reaction is widely regarded as a major method to generate H2 , a promising source of renewable energy to deal with the energy crisis faced up to human being. Efficient exploitation of visible light in practice of water splitting with pure TiO2 material, one of the most popular semiconductor material used for photoelectrochemical water splitting, is still challenging. One dimensional TiO2 nanotubes is highly desired with its less recombination with the short distance for charge carrier diffusion and light-scattering properties. This work is based on TiO2 NTPC electrode by the optimized two-step anodization method from our group. A highly crystalized p-type Cu2O layer was deposited by optimized pulse potentiostatic electrochemical deposition onto TiO2 nanotubes to enhance the visible light absorption of a pure p-type TiO2 substrate and to build a p-n junction at the interface to improve the PEC performance. However, because of the real photocurrent of Cu2O is far away from its theoretical limit and also poor stability in the aqueous environment, a design of rGO medium layer was added between TiO2 nanotube and Cu2O layer to enhance the photogenerated electrons and holes separation, extend charge carrier diffusion length (in comparison with those of conventional pure TiO2 or Cu2O materials) which could significantly increase photocurrentudto 0.65 mA/cm2 under visible light illumination (>420 nm) and also largely improve the stability of Cu2O layer, finally lead to an enhancement of water splitting performance.
机译:通过光电化学反应将水分解是产生H2的主要方法,H2是应对人类面临的能源危机的一种有希望的可再生能源。在使用纯TiO2材料进行水分解的实践中,有效利用可见光仍然是一项挑战,纯TiO2材料是用于光电化学水分解的最流行的半导体材料之一。一维TiO2纳米管由于其重组少,距离短,电荷载流子扩散和光散射特性而非常需要。这项工作是基于我们小组优化的两步阳极氧化方法,基于TiO2 NTPC电极。通过优化的脉冲恒电位电化学沉积,将高度结晶的p型Cu2O层沉积到TiO2纳米管上,以增强纯p型TiO2基板的可见光吸收,并在界面处建立p-n结以提高PEC性能。但是,由于Cu2O的实际光电流远未达到理论极限,并且在水环境中的稳定性较差,因此在TiO2纳米管与Cu2O层之间增加了rGO介质层的设计,以增强光生电子和空穴的分离,扩展电荷。载流子扩散长度(与传统的纯TiO2或Cu2O材料相比)可在可见光(> 420 nm)下显着增加光电流udud至0.65 mA / cm2,并大大提高了Cu2O层的稳定性,最终导致增强水分解性能。

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    Shi Le;

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  • 年度 2015
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  • 正文语种 en
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