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金属纳米柱自组装增强氧化物半导体光电化学水分解。

Photoelectrochemical water splitting enhanced by self-assembled metal nanopillars embedded in an oxide semiconductor photoelectrode.

机构信息

Institute for Solid State Physics (ISSP), University of Tokyo, 5-1-5 Kashiwanoha, Kashiwa 277-8581, Japan.

Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Japan.

出版信息

Nat Commun. 2016 Jun 3;7:11818. doi: 10.1038/ncomms11818.

Abstract

Production of chemical fuels by direct solar energy conversion in a photoelectrochemical cell is of great practical interest for developing a sustainable energy system. Various nanoscale designs such as nanowires, nanotubes, heterostructures and nanocomposites have been explored to increase the energy conversion efficiency of photoelectrochemical water splitting. Here we demonstrate a self-organized nanocomposite material concept for enhancing the efficiency of photocarrier separation and electrochemical energy conversion. Mechanically robust photoelectrodes are formed by embedding self-assembled metal nanopillars in a semiconductor thin film, forming tubular Schottky junctions around each pillar. The photocarrier transport efficiency is strongly enhanced in the Schottky space charge regions while the pillars provide an efficient charge extraction path. Ir-doped SrTiO3 with embedded iridium metal nanopillars shows good operational stability in a water oxidation reaction and achieves over 80% utilization of photogenerated carriers under visible light in the 400- to 600-nm wavelength range.

摘要

通过光电化学池直接将太阳能转化为化学燃料,对于开发可持续能源系统具有重要的实际意义。各种纳米级设计,如纳米线、纳米管、异质结和纳米复合材料,已经被探索用于提高光电化学水分解的能量转换效率。在这里,我们展示了一种自组织的纳米复合材料概念,用于提高光载流子分离和电化学能量转换的效率。通过将自组装的金属纳米柱嵌入半导体薄膜中,形成每个纳米柱周围的管状肖特基结,可以形成机械坚固的光电电极。在肖特基空间电荷区中,光载流子输运效率得到了显著提高,而纳米柱则提供了有效的电荷提取路径。嵌入铱金属纳米柱的掺铱 SrTiO3 在水氧化反应中表现出良好的工作稳定性,在 400 到 600nm 波长范围内的可见光下,光生载流子的利用率超过 80%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8372/4895796/80379e18d9b1/ncomms11818-f1.jpg

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