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基于脉冲激光烧蚀法合成用于催化应用的胶体金属纳米粒子。

Pulsed laser ablation based synthesis of colloidal metal nanoparticles for catalytic applications.

机构信息

NanoQAM, Department of Chemistry, UQAM Succ Centre Ville, CP8888, Montreal, Quebec H3C 3P8, Canada; School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, China.

INRS-EMT, 1650, Boul. Lionel-Boulet, Varennes, Quebec J3X 1S2, Canada.

出版信息

J Colloid Interface Sci. 2017 Mar 1;489:138-149. doi: 10.1016/j.jcis.2016.07.050. Epub 2016 Jul 21.

Abstract

Nowadays, metal nanoparticles (NPs) have been considered as highly promising functional materials, impacting virtually all the fields of science and technologies. Numerous wet-chemical approaches have been developed to synthesize metal NPs with various components and structures. Although successful, impurities, such as additives and reaction residuals, usually remain in products. Recently, an alternative method, pulsed laser ablation in liquid (PLAL) phase has attracted increasing attention for colloidal NP preparation, since it can realize a chemical-free environment, leading to the formation of a "clean" NP dispersion. This unique feature makes the PLAL method and resulting metal NPs extremely attractive for catalytic applications, since catalytic reaction efficiency is strongly dependent on the surface feature of metal NPs. Usually, a surfactant-free, "bare" metal surface is highly desired for catalysis as it favors the access of the reactants to the surface active sites of metal NPs. Due to the absence of ligand or stabilizer molecules on the surface of PLAL-NPs, it is expected that these PLAL-NPs can exhibit higher catalytic activity in comparison to their chemically synthesized counterparts. In this review, we briefly introduce some recent advances on the synthesis of PLAL-metal NPs and some of their important catalytic applications.

摘要

如今,金属纳米粒子(NPs)被认为是极具前景的功能材料,几乎影响到科学技术的各个领域。已经开发出许多湿化学方法来合成具有各种成分和结构的金属 NPs。虽然这些方法取得了成功,但在产品中通常仍会残留杂质,例如添加剂和反应残留物。最近,脉冲激光烧蚀液相(PLAL)法作为胶体 NPs 制备的一种替代方法引起了越来越多的关注,因为它可以实现无化学环境,从而形成“清洁”的 NP 分散体。这种独特的特性使得 PLAL 方法和由此产生的金属 NPs 在催化应用中极具吸引力,因为催化反应效率强烈依赖于金属 NPs 的表面特性。通常,由于表面活性剂的存在会阻碍反应物到达金属 NPs 的表面活性位点,因此无表面活性剂的“裸露”金属表面对于催化是非常有利的。由于 PLAL-NPs 表面不存在配体或稳定剂分子,因此预计这些 PLAL-NPs 在催化方面的活性要高于化学合成的对应物。在本文中,我们简要介绍了 PLAL 金属 NPs 的一些最新合成进展及其在一些重要催化应用中的情况。

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