新型阶梯结构TiO2-WO3纳米异质结的构建及其光催化析氢性能的增强

Q3 Materials Science
M. Rebeca Sofiya Joice , Priya Ranjan Dev , E. Iyyappan , T. Manovah David , Nithya Thangavel , Bernaurdshaw Neppolian , P. Wilson
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引用次数: 0

摘要

太阳能驱动的光催化析氢是一种高效、可持续的氢合成方法。二氧化钛(TiO2)是一种高效的光催化剂,通过降低光诱导载流子的复合速率可以进一步提高其在制氢中的应用。在这种情况下,WO3是提高TiO2光效率的可行材料。本研究采用易浸渍法制备了1D TiO2纳米管/WO3纳米棒(TN-WR)阶梯结构(S-scheme)异质结。XRD研究证实TiO2为锐钛矿相,WO3为单斜晶相。形态学研究揭示了具有介孔表面的纳米复合材料的一维微观结构。UV-DRS和PL谱图显示了波长的变色,这表明纳米复合材料在可见光区域被激活。XPS研究表明,在加入WO3后,TiO2中会产生缺陷位点。因此,新型1D TN-WR -s方案异质结纳米复合材料具有1761 μmol g−1h−1的高光催化产氢速率。为了研究形貌在析氢过程中的作用,我们考虑了具有球形形貌的TiO2/WO3纳米复合材料进行比较。本研究为半导体异质结光催化剂的高效析氢设计提供了新的见解,同时避免了贵金属的使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Construction of novel step-scheme TiO2-WO3 nanostructured heterojunction towards morphology-driven enhancement of photocatalytic hydrogen evolution

Construction of novel step-scheme TiO2-WO3 nanostructured heterojunction towards morphology-driven enhancement of photocatalytic hydrogen evolution
Photocatalytic hydrogen evolution driven via solar energy is an efficient and sustainable method for hydrogen synthesis. The use of titania (TiO2), an efficient photocatalyst in hydrogen generation, can be improved further by reducing the recombination rate of photoinduced charge carriers. In this context, WO3 is a viable material to boost TiO2 photoefficiency. In the present study, 1D TiO2 nanotube/WO3 nanorod (TN-WR) Step-scheme (S-scheme) heterojunction was fabricated via a facile impregnation method. XRD studies confirmed the anatase phase of TiO2 and the monoclinic phase of WO3. Morphological studies revealed the 1D microstructure of the nanocomposite with a mesoporous surface. UV-DRS and PL profiles displayed a bathochromic shift in wavelength signifying the activation of the nanocomposite in the visible region. XPS studies indicated the generation of defective sites in TiO2 upon incorporation of WO3. Thus, the novel 1D TN-WR S-scheme heterojunction nanocomposite demonstrates a remarkably high photocatalytic hydrogen generation rate of 1761 μmol g−1h−1. In order to investigate the role of morphology in hydrogen evolution, TiO2/WO3 nanocomposites with spherical morphologies were considered for comparison. This study provides a novel insight into the design of semiconductor heterojunction photocatalysts for efficient hydrogen evolution while avoiding the use of noble metals.
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来源期刊
JCIS open
JCIS open Physical and Theoretical Chemistry, Colloid and Surface Chemistry, Surfaces, Coatings and Films
CiteScore
4.10
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审稿时长
36 days
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