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面内各向异性沉积具有高应变的合金壳层于金属间化合物纳米颗粒上以增强电催化性能。

Facet-Dependent Deposition of Highly Strained Alloyed Shells on Intermetallic Nanoparticles for Enhanced Electrocatalysis.

机构信息

Department of Chemistry, Indiana University, Bloomington , 800 East Kirkwood Avenue, Bloomington, Indiana 47405, United States.

Center for Nanophase Materials Sciences, Oak Ridge National Laboratory , One Bethel Valley Road, Oak Ridge, Tennessee 37831 United States.

出版信息

Nano Lett. 2017 Sep 13;17(9):5526-5532. doi: 10.1021/acs.nanolett.7b02239. Epub 2017 Aug 25.

Abstract

Surface strains can enhance the performance of platinum-based core@shell electrocatalysts for the oxygen reduction reaction (ORR). Bimetallic core@shell nanoparticles (NPs) are widely studied nanocatalysts but often have limited lattice mismatch and surface compositions; investigations of core@shell NPs with greater compositional complexity and lattice misfit are in their infancy. Here, a new class of multimetallic NPs composed of intermetallic cores and random alloy shells is reported. Specifically, face-centered cubic Pt-Cu random alloy shells were deposited on PdCu B2 intermetallic seeds in a facet-dependent manner, giving rise to faceted core@shell NPs with highly strained surfaces. High-resolution transmission electron microscopy revealed orientation-dependent surface strains, where the compressive strains were greater on Pt-Cu {200} than {111} facets. These core@shell NPs provide higher specific area and mass activities for the ORR when compared to conventional Pt-Cu NPs. Moreover, these intermetallic@random alloy NPs displayed high endurance, undergoing 10,000 cycles with only a slight decay in activity and no apparent structural changes.

摘要

表面应变可以提高基于铂的核壳型电催化剂在氧还原反应(ORR)中的性能。双金属核壳纳米颗粒(NPs)是广泛研究的纳米催化剂,但通常晶格失配和表面组成有限;对于具有更大组成复杂性和晶格失配的核壳 NPs 的研究还处于起步阶段。在这里,报道了一类由金属间核和随机合金壳组成的新型多金属 NPs。具体而言,面心立方 Pt-Cu 随机合金壳以面依赖性方式沉积在 PdCu B2 金属间种子上,从而产生具有高度应变表面的面心立方核壳 NPs。高分辨率透射电子显微镜揭示了取向依赖的表面应变,其中 Pt-Cu{200}面的压缩应变大于{111}面。与传统的 Pt-Cu NPs 相比,这些核壳 NPs 为 ORR 提供了更高的比表面积和质量活性。此外,这些金属间@随机合金 NPs 表现出高耐久性,在 10000 次循环中仅略有活性衰减,没有明显的结构变化。

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