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在电化学电势循环过程中研究 Pt-Ni 纳米颗粒催化剂原子结构转变的原位研究。

In situ study of atomic structure transformations of Pt-Ni nanoparticle catalysts during electrochemical potential cycling.

机构信息

Technical University Berlin, Strasse des 17. Juni 124, 10623 Berlin, Germany.

出版信息

ACS Nano. 2013 Jul 23;7(7):5666-74. doi: 10.1021/nn402406k. Epub 2013 Jul 12.

Abstract

When exposed to corrosive anodic electrochemical environments, Pt alloy nanoparticles (NPs) undergo selective dissolution of the less noble component, resulting in catalytically active bimetallic Pt-rich core-shell structures. Structural evolution of PtNi6 and PtNi3 NP catalysts during their electrochemical activation and catalysis was studied by in situ anomalous small-angle X-ray scattering to obtain insight in element-specific particle size evolution and time-resolved insight in the intraparticle structure evolution. Ex situ high-energy X-ray diffraction coupled with pair distribution function analysis was employed to obtain detailed information on the atomic-scale ordering, particle phases, structural coherence lengths, and particle segregation. Our studies reveal a spontaneous electrochemically induced formation of PtNi particles of ordered Au3Cu-type alloy structures from disordered alloy phases (solid solutions) concomitant with surface Ni dissolution, which is coupled to spontaneous residual Ni metal segregation during the activation of PtNi6. Pt-enriched core-shell structures were not formed using the studied Ni-rich nanoparticle precursors. In contrast, disordered PtNi3 alloy nanoparticles lose Ni more rapidly, forming Pt-enriched core-shell structures with superior catalytic activity. Our X-ray scattering results are confirmed by STEM/EELS results on similar nanoparticles.

摘要

当暴露于腐蚀性的阳极电化学环境中时,Pt 合金纳米粒子 (NPs) 会经历较不活泼成分的选择性溶解,从而形成具有催化活性的双金属富 Pt 核壳结构。通过原位异常小角 X 射线散射研究了 PtNi6 和 PtNi3 NP 催化剂在电化学活化和催化过程中的结构演变,以深入了解元素特异性颗粒尺寸演变和颗粒内结构演变的时间分辨信息。采用与配分函数分析相结合的高能量 X 射线衍射技术,获得了有关原子尺度有序性、颗粒相、结构相干长度和颗粒偏析的详细信息。我们的研究揭示了从无序合金相(固溶体)自发电化学诱导形成有序 Au3Cu 型合金结构的 PtNi 颗粒,伴随着表面 Ni 的溶解,这与 PtNi6 活化过程中自发剩余 Ni 金属偏析相关。使用研究的富 Ni 纳米颗粒前体并未形成富 Pt 的核壳结构。相比之下,无序的 PtNi3 合金纳米颗粒更快地失去 Ni,形成具有优越催化活性的富 Pt 核壳结构。我们的 X 射线散射结果得到了类似纳米颗粒的 STEM/EELS 结果的证实。

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