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A two-storey structured photoanode of a 3D Cu2ZnSnS4/CdS/ZnO@steel composite nanostructure for efficient photoelectrochemical hydrogen generation

机译:一个3 d的两层结构的光电阳极Cu2ZnSnS4 / cd / ZnO@steel复合纳米结构为高效的光电化学氢一代

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摘要

A two-storey structured photoanode of a 3D Cu2ZnSnS4(CZTS)/CdS/ZnO@steel composite nanostructure has been fabricated by using the solution method and demonstrated highly efficient photoelectrochemical hydrogen generation due to its contraption in the structure for sufficient light absorption as well as the three step-down band alignments for efficient charge separation and transport. This composite structure is composed of two storeys: the upper storey is the CZTS/CdS/ZnO hetero-nanorods (NRs) covered on the stainless steel mesh; the bottom storey is the CZTS/CdS/ZnO hetero-NRs grown on the FTO glass. The CZTS/CdS/ZnO hetero-NRs have cascade band gaps decreasing from 3.15 to 1.82 eV, which gives them efficient charge transfer and broad photoresponse in the UV to near-IR region, resulting in 47% IPCE in a wide light region from 400 to 500 nm; and the stainless steel mesh serves not only as a conductor for charge transport, but also as a skeleton of the grid structure for absorbing more light. The related mechanism has been investigated, which demonstrates that the two-storey CZTS/CdS/ZnO@steel composite nanostructure would have great potential as a promising photoelectrode with high efficiency and low cost for PEC hydrogen generation.
机译:一个3 d的两层结构的光电阳极Cu2ZnSnS4 (CZTS) / CdS / ZnO@steel复合纳米结构组合使用解决方法和高效光电化学氢代由于其装置结构足够了光吸收以及三个降压乐队校准有效电荷分离和运输。由两层:上层是CZTS / cd /氧化锌hetero-nanorods (NRs)覆盖不锈钢网;CZTS / cd /氧化锌hetero-NRs种植在FTO玻璃。CZTS / cd /氧化锌hetero-NRs梯级带差距从3.15减少到1.82电动汽车,这给了他们有效的电荷转移和广泛在紫外到近红外线区域光响应,导致47%的IPCE宽光区域400到500海里;服务不仅为导体运输,而且作为一个网格的骨架结构吸收更多的光。机制研究,证明了两层楼CZTS / cd / ZnO@steel复合纳米结构有很大的潜力有前途光电极效率高和低成本对压电陶瓷氢生成。

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