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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Platinum Metal Catalysts of High-Index Surfaces: From Single-Crystal Planes to Electrochemically Shape-Controlled Nanoparticles
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Platinum Metal Catalysts of High-Index Surfaces: From Single-Crystal Planes to Electrochemically Shape-Controlled Nanoparticles

机译:高指数表面的铂金属催化剂:从单晶平面到电化学形状控制的纳米粒子

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摘要

Nanoparticles of platinum group metals (PGM) supported on diverse substrate materials are widely used catalysts in many important fields such as modern chemical industry, petrochemical industry, automobile exhaust purification, and fuel cells. Due to the extremely high cost and rare reserve of the PGM on the earth, to further improve the catalytic activity, stability, and utility efficiency of PGM nanoparticles is the key issue in relevant industrial development as well as the challenge of basic research of science and technology. This feature article summarizes at first the relationship between surface structure and catalytic functionality gained by using metal single-crystal planes as model electrocatalysts, which reveals that high-index planes, i.e., the planes denoted by a set of Miller indices (hkl) with at least one index being larger than unit, with high density of atomic steps and kinks, exhibit generally high catalytic reactivity and stability. Next, guided by the knowledge acquired in model electrocatalysis, we put emphasis upon the electrochemically shape-controlled synthesis of Pt and Pd nanocrystals (NCs) bounded by high-index facets, including tetrahexahedral NCs with 24 {hk0} facets, trapezohedral NCs with 24 {hkk} facets, concave hexoctahedral NCs with 48 {hkl} facets, and multiple twinned nanorods with {hk0} facets. Finally, challenging issues and future prospects in this exciting field are outlined.
机译:负载在多种基质材料上的铂族金属(PGM)纳米颗粒是许多重要领域的广泛使用的催化剂,例如现代化学工业,石化工业,汽车尾气净化和燃料电池。由于PGM在地球上的成本极高且难得,因此,进一步提高PGM纳米颗粒的催化活性,稳定性和实用性是相关产业发展的关键问题,也是科学研究和基础研究的挑战。技术。该专题文章首先总结了通过使用金属单晶平面作为模型电催化剂获得的表面结构与催化功能之间的关系,该研究揭示了高折射率平面,即由一组米勒指数(hkl)表示的平面至少一个指数大于单位,具有高的原子台阶和纽结密度,通常表现出高的催化反应性和稳定性。接下来,基于在模型电催化中获得的知识,我们将重点放在由高折射率刻面界定的Pt和Pd纳米晶体(NC)的电化学形状控制合成中,包括具有24 {hk0}刻面的四面体NC,具有24 {hk0}面的梯形NC {hkk}刻面,具有48个{hkl}刻面的凹面六面体NC和具有{hk0}刻面的多个孪生纳米棒。最后,概述了这个令人兴奋的领域中的挑战性问题和未来前景。

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