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太阳光诱导光子辅助合成TiO₂负载的高度分散钌纳米颗粒催化剂

Solar Light Induced Photon-Assisted Synthesis of TiO₂ Supported Highly Dispersed Ru Nanoparticle Catalysts.

作者信息

Wojciechowska Joanna, Gitzhofer Elisa, Grams Jacek, Ruppert Agnieszka M, Keller Nicolas

机构信息

Institute of General and Ecological Chemistry, Faculty of Chemistry, Lodz University of Technology, ul. Żeromskiego 116, 90-924 Łódź, Poland.

Institut de Chimie et Procédés pour l'Energie, l'Environnement et la Santé, CNRS/University of Strasbourg, 25 rue Becquerel, 67087 Strasbourg, France.

出版信息

Materials (Basel). 2018 Nov 19;11(11):2329. doi: 10.3390/ma11112329.

Abstract

Ru/TiO₂ are promising heterogeneous catalysts in different key-reactions taking place in the catalytic conversion of biomass towards fuel additives, biofuels, or biochemicals. TiO₂ supported highly dispersed nanometric-size metallic Ru catalysts were prepared at room temperature via a solar light induced photon-assisted one-step synthesis in liquid phase, far smaller Ru nanoparticles with sharper size distribution being synthesized when compared to the catalysts that were prepared by impregnation with thermal reduction in hydrogen. The underlying strategy is based on the redox photoactivity of the TiO₂ semi-conductor support under solar light for allowing the reduction of metal ions pre-adsorbed at the host surface by photogenerated electrons from the conduction band of the semi-conductor in order to get a fine control in terms of size distribution and dispersion, with no need of chemical reductant, final thermal treatment, or external hydrogen. Whether acetylacetonate or chloride was used as precursor, 0.6 nm sub-nanometric metallic Ru particles were synthesized on TiO₂ with a sharp size distribution at a low loading of 0.5 wt.%. Using the chloride precursor was necessary for preparing Ru/TiO₂ catalysts with a 0.8 nm sub-nanometric mean particle size at 5 wt.% loading, achieved in basic conditions for benefitting from the enhanced adsorption between the positively-charged chloro-complexes and the negatively-charged TiO₂ surface. Remarkably, within the 0.5⁻5 wt.% range, the Ru content had only a slight influence on the sub-nanometric particle size distribution, thanks to the implementation of suitable photo-assisted synthesis conditions. We demonstrated further that a fine control of the metal Ru nanoparticle size on the TiO₂ support was possible via a controlled nanocluster growth under irradiation, while the nanoparticles revealed a good resistance to thermal sintering.

摘要

在生物质催化转化为燃料添加剂、生物燃料或生物化学品的不同关键反应中,钌/二氧化钛是很有前景的多相催化剂。通过室温下的太阳光诱导光子辅助液相一步合成法制备了二氧化钛负载的高度分散的纳米级金属钌催化剂,与通过氢气热还原浸渍法制备的催化剂相比,所合成的钌纳米颗粒尺寸更小,尺寸分布更窄。其基本策略基于二氧化钛半导体载体在太阳光下的氧化还原光活性,通过半导体导带中的光生电子还原预先吸附在主体表面的金属离子,从而在尺寸分布和分散性方面实现精细控制,无需化学还原剂、最终热处理或外部氢气。无论使用乙酰丙酮盐还是氯化物作为前驱体,在0.5 wt.%的低负载量下,都能在二氧化钛上合成尺寸分布尖锐的0.6 nm亚纳米级金属钌颗粒。使用氯化物前驱体对于制备负载量为5 wt.%、平均粒径为0.8 nm的亚纳米级钌/二氧化钛催化剂是必要的,这是在碱性条件下实现的,有利于带正电的氯络合物与带负电的二氧化钛表面之间增强的吸附。值得注意的是,在0.5⁻5 wt.%范围内,由于采用了合适的光辅助合成条件,钌含量对亚纳米颗粒尺寸分布的影响很小。我们进一步证明,通过在辐照下控制纳米团簇的生长,可以对二氧化钛载体上的金属钌纳米颗粒尺寸进行精细控制,同时这些纳米颗粒表现出良好的抗热烧结性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e38e/6267277/77c3691420df/materials-11-02329-g001.jpg

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