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首页> 外文期刊>Advanced Functional Materials >Mesoporous Colloidal Superparticles of Platinum-Group Nanocrystals with Surfactant-Free Surfaces and Enhanced Heterogeneous Catalysis
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Mesoporous Colloidal Superparticles of Platinum-Group Nanocrystals with Surfactant-Free Surfaces and Enhanced Heterogeneous Catalysis

机译:具有无表面活性剂表面和增强的非均相催化作用的铂族纳米晶体的介孔胶体超颗粒

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摘要

Synthesis of colloidal superparticles (CSPs) of nanocrystals, a class of assembled nanocrystals in the form of colloidal particles, has been emerging as a new frontier in the field of nanotechnology because of their potential novel properties originated from coupling of individual nanocrystals in CSPs. Here, a facile approach is reported for the controlled synthesis of mesoporous CSPs made of various platinum-group nanocrystals that exhibit high colloidal stability and ligand-free surfaces to significantly benefit their applications in solution-phase heterogeneous catalysis. The synthesis relies on self-limiting growth of composite particles through coprecipitation of both Pt-group nanocrystals (or their precursor compounds) and silver halides on sacrificial substrates of colloidal silver particles. The intermediate silver halides in the composite particles play the critical role in limiting the continuous growth (and/or coalescence) of individual Pt-group nanocrystals and they can be selectively dissolved to create nanoscale pores in the resulting CSPs.
机译:纳米晶体的胶体超颗粒(CSPs)的合成是一类以胶体颗粒形式组装的纳米晶体,由于其潜在的新颖性质源自于单个纳米晶体在CSP中的偶联,因此已经成为纳米技术领域的一个新领域。在此,据报道一种简便的方法可控制地合成由各种铂族纳米晶体制成的介孔CSP,这些铂族纳米晶体显示出高的胶体稳定性和无配体的表面,从而极大地有益于其在溶液相非均相催化中的应用。合成依赖于胶体银颗粒的牺牲基质上的Pt基纳米晶体(或其前体化合物)和卤化银的共沉淀,复合颗粒的自限生长。复合颗粒中的中间卤化银在限制单个Pt基纳米晶体的连续生长(和/或聚结)中起关键作用,并且可以选择性地将它们溶解以在所得CSP中创建纳米级孔。

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  • 来源
    《Advanced Functional Materials》 |2015年第11期|1638-1647|共10页
  • 作者单位

    Center for Nanoscale Materials Argonne National Laboratory 9700 South Cass Avenue, Argonne, IL 60439, USA;

    Center for Nanoscale Materials Argonne National Laboratory 9700 South Cass Avenue, Argonne, IL 60439, USA;

    Center for Nanoscale Materials Argonne National Laboratory 9700 South Cass Avenue, Argonne, IL 60439, USA;

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