在TiO2负载的非等离子体Pt金属上高效光热催化制氢

Rui Song, B. Luo, D. Jing
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引用次数: 10

摘要

传统的光催化制氢大多是在室温下进行的。在这项工作中,我们选择了非等离子体金属Pt锚定在具有光热活性的TiO2纳米颗粒上,以探索在整个太阳光谱范围内更有效的制氢技术。光热实验在精心设计的顶辐照光催化反应器中进行,该反应器可以承受高温和相对较高的压力。研究了甲醇(MeOH)、三乙醇胺(TEOA)、甲酸(HCOOH)和葡萄糖四种典型的有机物质。甲酸是一种典型的氢载体,其活性最好。此外,系统考察了牺牲剂浓度和温度等不同基本参数对产氢活性的影响,以了解光热催化反应过程的定性和定量影响。Pt/TiO2在90℃下的光热催化反应的产氢率分别是光或热条件下反应的8.1倍和4.2倍。可见光热产氢量并不是光和热效应的简单总和。这表明Pt/TiO2纳米颗粒可以有效地耦合光热能量,从而更有效地驱动氢气的产生。因此,优异的性能使其优于其他传统的半导体光催化剂和热催化剂。未来的工作可以集中在探索光热催化以及光热效应之间潜在的协同作用,以找到更有效的利用整个太阳光谱的制氢技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient photothermal catalytic hydrogen production over nonplasmonic Pt metal supported on TiO2
Most of the traditional photocatalytic hydrogen productions were conducted under room temperature. In this work, we selected nonplasmonic Pt metal anchored on TiO2 nanoparticles with photothermal activity to explore more efficient hydrogen production technology over the whole solar spectrum. Photothermal experiments were carried out in a carefully designed top irradiated photocatalytic reactor that can withstand high temperature and relatively higher pressure. Four typical organic materials, i.e., methyl alcohol (MeOH), trielthanolamne (TEOA), formic acid (HCOOH) and glucose, were investigated. Formic acid, a typical hydrogen carrier, was found to show the best activity. In addition, the effects of different basic parameters such as sacrificial agent concentration and the temperature on the activity of hydrogen generation were systematically investigated for understanding the qualitative and quantitative effects of the photothermal catalytic reaction process. The hydrogen yields at 90 °C of the photothermal catalytic reaction with Pt/TiO2 are around 8.1 and 4.2 times higher than those of reactions carried out under photo or thermal conditions alone. We can see that the photothermal hydrogen yield is not the simple sum of the photo and thermal effects. This result indicated that the Pt/TiO2 nanoparticles can efficiently couple photo and thermal energy to more effectively drive hydrogen production. As a result, the excellent ability makes it superior to other conventional semiconductor photocatalysts and thermal catalysts. Future works could concentrate on exploring photothermal catalysis as well as the potential synergism between photo and thermal effects to find more efficient hydrogen production technology using the whole solar spectrum.
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