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双面 CdS 和 CdSe 量子点共敏化 ZnO 纳米线阵列用于光电化学析氢。

Double-sided CdS and CdSe quantum dot co-sensitized ZnO nanowire arrays for photoelectrochemical hydrogen generation.

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Cruz, California 95064, USA.

出版信息

Nano Lett. 2010 Mar 10;10(3):1088-92. doi: 10.1021/nl100250z.

Abstract

We report the design and characterization of a novel double-sided CdS and CdSe quantum dot cosensitized ZnO nanowire arrayed photoanode for photoelectrochemical (PEC) hydrogen generation. The double-sided design represents a simple analogue of tandem cell structure, in which the dense ZnO nanowire arrays were grown on an indium-tin oxide substrate followed by respective sensitization of CdS and CdSe quantum dots on each side. As-fabricated photoanode exhibited strong absorption in nearly the entire visible spectrum up to 650 nm, with a high incident-photon-to-current-conversion efficiency (IPCE) of approximately 45% at 0 V vs Ag/AgCl. On the basis on a single white light illumination of 100 mW/cm(2), the photoanode yielded a significant photocurrent density of approximately 12 mA/cm(2) at 0.4 V vs Ag/AgCl. The photocurrent and IPCE were enhanced compared to single quantum dot sensitized structures as a result of the band alignment of CdS and CdSe in electrolyte. Moreover, in comparison to single-sided cosensitized layered structures, this double-sided architecture that enables direct interaction between quantum dot and nanowire showed improved charge collection efficiency. Our result represents the first double-sided nanowire photoanode that integrates uniquely two semiconductor quantum dots of distinct band gaps for PEC hydrogen generation and can be possibly applied to other applications such as nanostructured tandem photovoltaic cells.

摘要

我们报告了一种新型双面 CdS 和 CdSe 量子点敏化 ZnO 纳米线阵列光电化学(PEC)制氢光阳极的设计和特性。双面设计代表了串联电池结构的简单模拟,其中密集的 ZnO 纳米线阵列在氧化铟锡衬底上生长,然后在每一侧分别敏化 CdS 和 CdSe 量子点。所制备的光阳极在近整个可见光光谱范围内表现出强吸收,在 0 V 相对于 Ag/AgCl 时,其光电流转换效率(IPCE)约为 45%。在 100 mW/cm²的单个白光照射下,光阳极在 0.4 V 相对于 Ag/AgCl 时产生约 12 mA/cm²的显著光电流密度。与单个量子点敏化结构相比,由于 CdS 和 CdSe 在电解质中的能带排列,光电流和 IPCE 得到了增强。此外,与单侧共敏化层状结构相比,这种能够实现量子点与纳米线直接相互作用的双面结构显示出了改进的电荷收集效率。我们的结果代表了第一个集成了两个具有不同带隙的独特半导体量子点的双面纳米线光阳极,用于 PEC 制氢,并且可能应用于其他应用,例如纳米结构串联光伏电池。

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