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首页> 外文期刊>ACS nano >Nanofaceted C/Re(112?1): Fabrication, structure, and template for synthesizing nanostructured model pt electrocatalyst for hydrogen evolution reaction
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Nanofaceted C/Re(112?1): Fabrication, structure, and template for synthesizing nanostructured model pt electrocatalyst for hydrogen evolution reaction

机译:纳米C / Re(112?1):用于合成用于放氢反应的纳米结构模型pt电催化剂的制备,结构和模板

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摘要

We report the first observation of carbon-induced nanofaceting of a Re single crystal and its application in synthesizing a nanostructured model Pt electrocatalyst investigated using multiple surface science techniques, including low-energy electron diffraction, Auger electron spectroscopy, X-ray photoelectron spectroscopy, low-energy ion scattering, and scanning tunneling microscopy, combined with electrochemical reaction measurements. Upon annealing in acetylene at 700 K followed by annealing in vacuum at 1100 K, an initially planar Re(112?1) surface becomes completely faceted and covered with three-sided nanopyramids exposing (011?1), (101?1), and (112?0) faces. Using the faceted C/Re(112?1) surface as a template, we have successfully fabricated a nanostructured Pt monolayer (ML) electrocatalyst. The Pt ML supported on the C/Re nanotemplate exhibits higher activity for the hydrogen evolution reaction than Pt(111). This is the first application of faceted metal surfaces as templates for synthesis of nanoscale model electrocatalyst with well-defined (facet) surface structure and controlled (facet) size on the nanometer scale, illustrating the potential for future studies of nanostructured bimetallic systems relevant to electrocatalytic reactions.
机译:我们报道了碳诱导的Re单晶纳米刻面的首次观察及其在合成使用多种表面科学技术研究的纳米结构模型Pt电催化剂中的应用,包括低能电子衍射,俄歇电子能谱,X射线光电子能谱,低能-能量离子散射和扫描隧道显微镜,结合电化学反应测量。在700 K的乙炔中进行退火,然后在1100 K的真空中进行退火后,最初的平面Re(112→1)表面变得完全刻面并被三面纳米金字塔所覆盖,露出(011→1),(101→1)和(112?0)张面孔。使用多面C / ​​Re(112?1)表面作为模板,我们已经成功地制备了纳米结构的Pt单层(ML)电催化剂。负载在C / Re纳米模板上的Pt ML对氢气的放出反应比Pt(111)表现出更高的活性。这是多面金属表面作为模板的首次应用,该模板用于合成具有清晰(小平面)表面结构和受控(小平面)尺寸的纳米级模型电催化剂,从而说明了与电催化相关的纳米结构双金属系统的未来研究潜力反应。

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