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可见光光催化水分解的优化:金包覆和表面织构化 TiO2 反蛋白石纳米网络。

Optimization for visible light photocatalytic water splitting: gold-coated and surface-textured TiO2 inverse opal nano-networks.

机构信息

Interdisciplinary School of Green Energy and Low Dimensional Carbon Materials Center, UNIST, Korea.

出版信息

Nanoscale. 2013 Jul 21;5(14):6254-60. doi: 10.1039/c3nr01552a. Epub 2013 Jun 4.

Abstract

A gold nanoparticle-coated and surface-textured TiO2 inverse opal (Au/st-TIO) structure that provides a dramatic improvement of photoelectrochemical hydrogen generation has been fabricated by nano-patterning of TiO2 precursors on TiO2 inverse opal (TIO) and subsequent deposition of gold NPs. The surface-textured TiO2 inverse opal (st-TIO) maximizes the photon trapping effects triggered by the large dimensions of the structure while maintaining the adequate surface area achieved by the small dimensions of the structure. Au NPs are incorporated to further improve photoconversion efficiency in the visible region via surface plasmon resonance. st-TIO and Au/st-TIO exhibit a maximum photocurrent density of ∼0.58 mA cm(-2) and ∼0.8 mA cm(-2), which is 2.07 and 2.86 times higher than that of bare TIO, respectively, at an applied bias of +0.5 V versus an Ag/AgCl electrode under AM 1.5 G simulated sunlight illumination via a photocatalytic hydrogen generation reaction. The excellent performance of the surface plasmon-enhanced mesoporous st-TIO structure suggests that tailoring the nanostructure to proper dimensions, and thereby obtaining excellent light absorption, can maximize the efficiency of a variety of photoconversion devices.

摘要

一种金纳米粒子包覆和表面织构化的 TiO2 反蛋白石(Au/st-TIO)结构,通过在 TiO2 反蛋白石(TIO)上进行 TiO2 前驱体的纳米图案化和随后沉积金纳米粒子,可显著提高光电化学制氢的效率。表面织构化的 TiO2 反蛋白石(st-TIO)最大限度地提高了结构大尺寸引发的光子捕获效应,同时保持了结构小尺寸所实现的足够表面积。Au NPs 的加入通过表面等离子体共振进一步提高了可见光区的光转换效率。st-TIO 和 Au/st-TIO 在施加偏压为+0.5 V 相对于 Ag/AgCl 电极时,在 AM 1.5 G 模拟太阳光照射下,通过光催化制氢反应,分别具有约 0.58 mA cm(-2)和 0.8 mA cm(-2)的最大光电流密度,比裸 TIO 分别高 2.07 倍和 2.86 倍。表面等离子体增强介孔 st-TIO 结构的优异性能表明,通过适当的尺寸来调整纳米结构,从而获得优异的光吸收,可以最大限度地提高各种光转换器件的效率。

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