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TiO2 nanocrystals decorated Z-schemed core-shell CdS-CdO nanorod arrays as high efficiency anodes for photoelectrochemical hydrogen generation

机译:TiO2纳米晶体装饰为Z-示例的核心 - 壳CDS-CDO纳米块阵列,作为光电化学氢气的高效阳极

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摘要

TiO2 nanocrystals decorated core-shell CdS-CdO nanorod arrays, TiO2@CdO/CdS NR, were fabricated as high efficiency anodes for photoelctrochemical hydrogen generation. The novel sandwich heterostructure was constructed from first growth of CdS nanorod arrays on a fluorine doped tin oxide (FTO) substrate with a hydrothermal process, followed by in situ generation of CdO thin films of single digit nanometers from the CdS nanorod surfaces through thermal oxidation, and final decoration of TiO2 nanocrystals of 10-20 nm via a successive ionic layer absorption and reaction process. The core-shell CdS-CdO heterostructure possesses a Z-scheme band structure to enhance interfacial charge transfer, facilitating effective charge separation to suppress electron-hole recombination within CdS for much improved current density generation. The final decoration of TiO2 nanocrystals passivates surface defects and trap states of CdO, further suppressing surface charge recombination for even higher photovoltaic conversion efficiencies. The photoelectrochemical performances of the plain CdS nanorod array were significantly improved with the formation of the sandwich heterostructure, achieving a photo current density of 3.2 mA/cm(2) at 1.23 V (vs. RHE), a 141% improvement over the plain CdS nanorod array and a 32% improvement over the CdO/CdS nanorod array. (C) 2018 Elsevier Inc. All rights reserved.
机译:TiO2纳米晶体装饰核 - 壳CDS-CDO NANOROD阵列TiO2,CDO / CDS NR被制造为光elCTrochemical发电的高效阳极。新的夹层异质结构由CDS Nanorod阵列的CDS纳米棒(FTO)氧化物(FTO)基材的第一次生长构成,然后通过热氧化从CDS纳米棒表面原位产生单位数纳米的CDO薄膜,通过连续的离子层吸收和反应过程和最终装饰10-20nm的TiO2纳米晶体。核心壳CDS-CDO异质结构具有Z方案带结构,以增强界面电荷转移,促进有效的电荷分离,以抑制CD内的电子空穴重组,以得到大量改善的电流密度产生。 TiO2纳米晶体的最终装饰钝化CDO的表面缺陷和捕集状态,进一步抑制了甚至更高的光伏转化效率的表面电荷重组。用夹层异质结构的形成显着改善了普通CDS纳米棒阵列的光电化学性能,在1.23V(Vs.She)下实现3.2 mA / cm(2)的光电流密度,在普通CD上的141%改善141%纳米棒阵列和CDO / CDS纳米棒阵列的32%改进。 (c)2018 Elsevier Inc.保留所有权利。

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