Narayanan Radha, El-Sayed Mostafa A
Laser Dynamics Laboratory, School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, Georgia 30332-0400, USA.
J Phys Chem B. 2005 Jul 7;109(26):12663-76. doi: 10.1021/jp051066p.
While the nanocatalysis field has undergone an explosive growth during the past decade, there have been very few studies in the area of shape-dependent catalysis and the effect of the catalytic process on the shape and size of transition metal nanoparticles as well as their recycling potential. Metal nanoparticles of different shapes have different crystallographic facets and have different fraction of surface atoms on their corners and edges, which makes it interesting to study the effect of metal nanoparticle shape on the catalytic activity of various organic and inorganic reactions. Transition metal nanoparticles are attractive to use as catalysts due to their high surface-to-volume ratio compared to bulk catalytic materials, but their surface atoms could be so active that changes in the size and shape of the nanoparticles could occur during the course of their catalytic function, which could also affect their recycling potential. In this Feature Article, we review our work on the effect of the shape of the colloidal nanocatalyst on the catalytic activity as well as the effect of the catalytic process on the shape and size of the colloidal transition metal nanocatalysts and their recycling potential. These studies provide important clues on the mechanism of the reactions we studied and also can be very useful in the process of designing better catalysts in the future.
尽管在过去十年中纳米催化领域经历了爆炸式增长,但在形状依赖催化以及催化过程对过渡金属纳米颗粒的形状和尺寸及其循环利用潜力的影响方面,研究却非常少。不同形状的金属纳米颗粒具有不同的晶体学晶面,并且在其角和边缘上具有不同比例的表面原子,这使得研究金属纳米颗粒形状对各种有机和无机反应催化活性的影响变得很有趣。与块状催化材料相比,过渡金属纳米颗粒因其高的表面体积比而具有用作催化剂的吸引力,但其表面原子可能非常活泼,以至于在催化功能过程中纳米颗粒的尺寸和形状可能会发生变化,这也可能影响其循环利用潜力。在这篇专题文章中,我们回顾了我们关于胶体纳米催化剂形状对催化活性的影响以及催化过程对胶体过渡金属纳米催化剂的形状和尺寸及其循环利用潜力的影响的研究工作。这些研究为我们所研究反应的机理提供了重要线索,并且在未来设计更好的催化剂的过程中也可能非常有用。