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Rational Design of Hybrid Nanostructures for Advanced Photocatalysis

机译:先进光催化杂化纳米结构的合理设计

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Nanocatalysis has been a growing field over the past few decades with significant developments in understanding the surface properties of nanocatalysts. With recent advances in synthetic methods, size, shape and composition of the nanoparticles can be controlled in a well defined manner which facilitates achieving selective reaction products in multipath reactions. Nanoparticles with specific exposed crystal facets can have different reactivity than other facets for reaction intermediates, which favours selective pathways during the course of reaction. Heterogeneous catalysts have been studied extensively; nano-sized metal particles are absorbed on mesoporus supports, facilitating access to the large surface area of the nanoparticles and hence exposure of more catalytic sites. Photocatalysis is attractive area of catalysis, in which photoinduced charge carriers are used for a variety of catalytic applications. More interestingly, clean and renewable liquid fuels energy sources such as hydrogen and methyl alcohol can be generated using photocatalysts through water splitting and CO_2 reduction, respectively. Herein, we highlight the progress of nanocatalysis through metal, bimetallic nanoparticle, metal-semiconductor hybrid nanostructures and oxide nanoparticles for various reactions.
机译:在过去的几十年中,随着人们对纳米催化剂的表面性质的理解有了重大的发展,纳米催化已经成为一个不断发展的领域。随着合成方法的最新发展,可以以明确定义的方式控制纳米颗粒的尺寸,形状和组成,这有助于在多径反应中实现选择性反应产物。具有特定暴露晶面的纳米粒子对反应中间体的反应性可能不同于其他晶面,这有利于反应过程中的选择性途径。非均相催化剂已被广泛研究。纳米尺寸的金属颗粒被吸附在介孔载体上,有助于进入纳米颗粒的大表面积,从而暴露出更多的催化位点。光催化是有吸引力的催化领域,其中光诱导的电荷载体被用于各种催化应用。更有趣的是,清洁和可再生的液体燃料能源,例如氢气和甲醇,可以分别使用光催化剂通过水分解和CO_2还原产生。在本文中,我们重点介绍了通过金属,双金属纳米颗粒,金属-半导体杂化纳米结构和氧化物纳米颗粒进行各种反应的纳米催化进展。

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  • 来源
    《Advanced energy materials》 |2013年第1期|12-27|共16页
  • 作者

    Sachin Rawalekar; Taleb Mokari;

  • 作者单位

    Ilse Katz Institute for Nanoscale Science and Technology Department of Chemistry Ben-Gurion University of the Negev Beer Sheva 84105, Israel;

    Ilse Katz Institute for Nanoscale Science and Technology Department of Chemistry Ben-Gurion University of the Negev Beer Sheva 84105, Israel;

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