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

机译:铂-镍纳米粒子催化剂在电化学势循环过程中原子结构转变的原位研究

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摘要

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 PtNi_6 and PtNi_3 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 Au_3Cu-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 PtNi_6. Pt-enriched core-shell structures were not formed using the studied Ni-rich nanoparticle precursors. In contrast, disordered PtNi_3 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.
机译:当暴露于腐蚀性阳极电化学环境中时,Pt合金纳米颗粒(NPs)会选择性地溶解次贵金属,从而产生具有催化活性的富Pt的双金属核壳结构。通过原位反常小角度X射线散射研究了PtNi_6和PtNi_3 NP催化剂在电化学活化和催化过程中的结构演变,以了解特定元素的粒径演变以及颗粒内结构演变的时间分辨洞察力。使用异位高能X射线衍射和成对分布函数分析来获得有关原子级有序,粒子相,结构相干长度和粒子偏析的详细信息。我们的研究表明,自发的电化学诱导的有序的Au_3Cu型合金结构的PtNi颗粒由无序的合金相(固溶体)伴随着表面Ni的溶解而形成,这与活化PtNi_6时自发的残留Ni金属偏析有关。使用研究的富镍纳米颗粒前体不能形成富铂的核-壳结构。相比之下,无序的PtNi_3合金纳米颗粒会更快地失去Ni,从而形成具有出色催化活性的富Pt核壳结构。我们的X射线散射结果已通过类似纳米颗粒上STEM / EELS的结果得到证实。

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