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用于硅烷氧化的具有多种活性表面位点的异相金纳米线的蚀刻辅助制备方法。

Etching-Assisted Route to Heterophase Au Nanowires with Multiple Types of Active Surface Sites for Silane Oxidation.

作者信息

Wang Chaoqi, Li Xiang, Jin Lei, Lu Peng-Han, Dejoie Catherine, Zhu Wenxin, Wang Zhenni, Bi Wei, Dunin-Borkowski Rafal E, Chen Kai, Jin Mingshang

机构信息

Frontier Institute of Science and Technology and State Key Laboratory for Mechanical Behavior of Materials , Xi'an Jiaotong University , Xi'an , Shaanxi 710049 , China.

Center for Advancing Materials Performance from the Nanoscale (CAMP-Nano), State Key Laboratory for Mechanical Behavior of Materials , Xi'an Jiaotong University , Xi'an , Shaanxi 710049 , China.

出版信息

Nano Lett. 2019 Sep 11;19(9):6363-6369. doi: 10.1021/acs.nanolett.9b02532. Epub 2019 Aug 8.

Abstract

The construction of multiple types of active sites on the surface of a metallic catalyst can markedly enhance its catalytic activity toward specific reactions. Here, we show that heterophase gold nanowires (Au NWs) with multiple types of active surface sites can be synthesized using an etching-assisted process, yielding the highest reported turnover frequency (TOF) for Au catalysts toward the silane oxidation reaction by far. We use synchrotron powder X-ray diffraction (PXRD) and aberration-corrected (scanning) transmission electron microscopy (TEM) to show that the Au NWs contain heterophase structures, planar defects, and surface steps. Moreover, the contribution to the catalytic performance from each type of active sites was clarified. Surface steps on the Au NW catalysts, which were identified using aberration-corrected (scanning) TEM, were shown to play the most important role in enhancing the catalytic performance. By using synchrotron PXRD, it was shown that a small ratio of metastable phases within Au NWs can enhance catalytic activity by a factor of 1.35, providing a further route to improve catalytic activity. Of the three types of surface active sites, surface terminations of planar defects such as twin boundaries (TB) and stacking faults (SF) are less active than metastable phases and surface steps for Au catalysts toward the silane oxidation reaction. Such an etching-assisted synthesis of heterophase Au NWs promises to open new possibilities for catalysis, plasmonic, optics, and electrical applications.

摘要

在金属催化剂表面构建多种类型的活性位点可以显著提高其对特定反应的催化活性。在此,我们表明,通过蚀刻辅助工艺可以合成具有多种类型活性表面位点的异相金纳米线(Au NWs),其对硅烷氧化反应的周转频率(TOF)是目前报道的Au催化剂中最高的。我们使用同步辐射粉末X射线衍射(PXRD)和像差校正(扫描)透射电子显微镜(TEM)表明,Au NWs包含异相结构、平面缺陷和表面台阶。此外,还阐明了每种类型活性位点对催化性能的贡献。使用像差校正(扫描)TEM鉴定出的Au NW催化剂上的表面台阶在提高催化性能方面起着最重要的作用。通过同步辐射PXRD表明,Au NWs中少量的亚稳相可以使催化活性提高1.35倍,为提高催化活性提供了另一条途径。在三种类型的表面活性位点中,对于Au催化剂催化硅烷氧化反应而言,诸如孪晶界(TB)和堆垛层错(SF)等平面缺陷的表面终端比亚稳相和表面台阶的活性低。这种异相Au NWs的蚀刻辅助合成有望为催化、等离子体、光学和电气应用开辟新的可能性。

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