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Activity Descriptor Identification for Oxygen Reduction on Platinum-Based Bimetallic Nanoparticles: In Situ Observation of the Linear Composition–Strain–Activity Relationship

机译:铂基双金属纳米颗粒上氧还原反应的活性指标鉴定:线性组成-应变-活性关系的原位观察

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摘要

Despite recent progress in developing active and durable oxygen reduction catalysts with reduced Pt content, lack of elegant bottom-up synthesis procedures with knowledge over the control of atomic arrangement and morphology of the Pt–alloy catalysts still hinders fuel cell commercialization. To follow a less empirical synthesis path for improved Pt-based catalysts, it is essential to correlate catalytic performance to properties that can be easily controlled and measured experimentally. Herein, using Pt–Co alloy nanoparticles (NPs) with varying atomic composition as an example, we show that the atomic distribution of Pt-based bimetallic NPs under operating conditions is strongly dependent on the initial atomic ratio by employing microscopic and in situ spectroscopic techniques. The PtxCo/C NPs with high Co content possess a Co concentration gradient such that Co is concentrated in the core and gradually depletes in the near-surface region, whereas the PtxCo/C NPs with low Co content possess a relatively uniform distribution of Co with low Co population in the near-surface region. Despite their different atomic structure, the oxygen reduction reaction (ORR) activity of PtxCo/C and Pt/C NPs is linearly related to the bulk average Pt–Pt bond length (RPt–Pt). The RPt–Pt is further shown to contract linearly with the increase in Co/Pt composition. These linear correlations together demonstrate that (i) the improved ORR activity of PtxCo/C NPs over pure Pt NPs originates predominantly from the compressive strain and (ii) the RPt–Pt is a valid strain descriptor that bridges the activity and atomic composition of Pt-based bimetallic NPs.
机译:尽管最近在开发具有降低的Pt含量的活性和持久性氧还原催化剂方面取得了进展,但是缺乏精巧的自下而上的合成程序,以及对Pt合金催化剂的原子排列和形态控制的了解,仍然阻碍了燃料电池的商业化。为了遵循较少经验的途径来开发改进的基于Pt的催化剂,必须将催化性能与可以通过实验轻松控制和测量的性能相关联。本文中,以具有不同原子组成的Pt-Co合金纳米颗粒(NPs)为例,我们表明,通过使用显微和原位光谱技术,在操作条件下Pt基双金属NPs的原子分布强烈依赖于初始原子比。 Co含量高的PtxCo / C NPs具有Co浓度梯度,使得Co集中在芯中并逐渐在近表面区域耗尽,而Co含量低的PtxCo / C NPs中Co的分布相对均匀。近地表区域的钴含量低。尽管它们的原子结构不同,但是PtxCo / C和Pt / C NPs的氧还原反应(ORR)活性与总体平均Pt–Pt键长(RPt–Pt)线性相关。进一步表明,RPt–Pt与Co / Pt组成的增加呈线性关系。这些线性相关性共同表明:(i)PtxCo / C NPs相对于纯Pt NPs的ORR活性的改善主要来自压缩应变,并且(ii)RPt–Pt是有效的应变描述符,可桥接Pt的活性和原子组成的双金属NP。

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