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Double-Nozzle Flame Spray Pyrolysis as a Potent Technology to Engineer Noble Metal-TiO2 Nanophotocatalysts for Efficient H2 Production

机译:双喷嘴火焰喷雾热解作为一种有效的技术,给工程师贵金属金属-TiO2纳米光催化剂用于高效的H2生产

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摘要

Noble metal-TiO2 nanohybrids, NM0-TiO2, (NM0 = Pt0, Pd0, Au0, Ag0) have been engineered by One-Nozzle Flame Spray Pyrolysis (ON-FSP) and Double-Nozzle Flame Spray Pyrolysis (DN-FSP), by controlling the method of noble metal deposition to the TiO2 matrix. A comparative screening of the two FSP methods was realized, using the NM0-TiO2 photocatalysts for H2 production from H2O/methanol. The results show that the DN-FSP process allows engineering of more efficient NM0-TiO2 nanophotocatalysts. This is attributed to the better surface-dispersion and narrower size-distribution of the noble metal onto the TiO2 matrix. In addition, DN-FSP process promoted the formation of intraband states in NM0-TiO2, lowering the band-gap of the nanophotocatalysts. Thus, the present study demonstrates that DN-FSP process is a highly efficient technology for fine engineering of photocatalysts, which adds up to the inherent scalability of Flame Spray Pyrolysis towards industrial-scale production of nanophotocatalysts.
机译:贵金属二氧化钛纳米复合物,NM0二氧化钛,(NM0 = PT0,PD0,AU0,AG0)已经被工程改造通过一喷嘴火焰喷雾热解(ON-FSP)和双喷嘴火焰喷雾热解(DN-FSP),由控制贵金属沉积到二氧化钛基体中的方法。两个FSP方法比较筛选实现,使用从H 2 O /甲醇H2生产NM0-TiO2光。结果表明,DN-FSP过程可以更有效地NM0二氧化钛nanophotocatalysts的工程。这是归因于更好的表面的分散体和贵金属的较窄的尺寸分布到TiO 2矩阵。此外,DN-FSP过程促进了带内的状态在NM0二氧化钛的形成,降低nanophotocatalysts的带隙。因此,本研究表明,DN-FSP过程是光催化剂的优良工程,其中增加了对火焰的喷雾热分解对工业规模生产nanophotocatalysts固有的可伸缩性高效率的技术。

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