首页> 外文期刊>International journal of sports medicine >Nanoscale architecture of ceria-based model catalysts: Pt-Co nanostructures on well-ordered CeO2(111) thin films
【24h】

Nanoscale architecture of ceria-based model catalysts: Pt-Co nanostructures on well-ordered CeO2(111) thin films

机译:基于Ceria的模型催化剂的纳米级结构:PT-Co纳米结构在井订货CEO2(111)薄膜上

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

We have prepared and characterized atomically well-defined model systems for ceria-supported Pt-Co core-shell catalysts. Pt@Co and Co@Pt core-shell nanostructures were grown on well-ordered CeO2(111) films on Cu(111) by physical vapour deposition of Pt and Co metals in ultrahigh vacuum and investigated by means of synchrotron radiation photoelectron spectroscopy and resonant photoemission spectroscopy. The deposition of Co onto CeO2(111) yields Co-CeO2(111) solid solution at low Co coverage (0.5 ML), followed by the growth of metallic Co nanoparticles at higher Co coverages. Both Pt@Co and Co@Pt model structures are stable against sintering in the temperature range between 300 and 500 K. After annealing at 500 K, the Pt@Co nanostructure contains nearly pure Co-shell while the Pt-shell in the Co@Pt is partially covered by metallic Co. Above 550 K, the re-ordering in the near surface regions yields a subsurface Pt-Co alloy and Pt-rich shells in both Pt@Co and Co@Pt nanostructures. In the case of Co@Pt nanoparticles, the chemical ordering in the near surface region depends on the initial thickness of the deposited Pt-shell. Annealing of the Co@Pt nanostructures in the presence of O-2 triggers the decomposition of Pt-Co alloy along with the oxidation of Co, regardless of the thickness of the initial Pt-shell. Progressive oxidation of Co coupled with adsorbate-induced Co segregation leads to the formation of thick CoO layers on the surfaces of the supported Co@Pt nanostructures. This process is accompanied by the disintegration of the CeO2(111) film and encapsulation of oxidized Co@Pt nanostructures by CeO2 upon annealing in O-2 above 550 K. Notably, during oxidation and reduction cycles with O-2 and H-2 at different temperatures, the changes in the structure and chemical composition of supported Co@Pt nanostructures were driven mainly by oxidation while reduction treatments had little effect regardless of the initial thickness of the Pt-shell. (C) 2020, Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.
机译:我们已经制备和表征了用于二氧化铈支持的PT-Co核壳催化剂的原子定义模型系统。 Pt @ Co和Co @ Pt核 - 壳纳米结构在Cu(111)上通过超高真空的Pt和Co金属的物理气相沉积在Cu(111)上的良好订购的CeO2(111)膜上生长,并通过同步辐射光电子光谱和谐振来研究光学激散光谱。 CO在CeO 2(111)上的沉积在低CO覆盖(0.5mL)下产生Co-CeO 2(111)固溶体,然后在较高CO覆盖物下进行金属Co纳米颗粒的生长。 Pt @ Co和Co @ Pt模型结构均稳定在300至500k的温度范围内稳定。在500 k时退火后,Pt @ Co纳米结构含有几乎纯的共壳,而Pt-shell在CO @ PT由金属有限公司部分覆盖在550K以上,近表面区域的重新排序在PT @ Co和Co @ Pt纳米结构中,在Pt @ Co和Co @ Pt纳米结构中得到了地下Pt-Co合金和PT富含壳。在CO @ Pt纳米颗粒的情况下,近表面区域中的化学排序取决于沉积的Pt-壳的初始厚度。在O-2存在下的CO @ Pt纳米结构的退火触发Pt-Co合金的分解以及CO的氧化,无论初始Pt-壳的厚度如何。与吸附诱导的Co偏析的CO的渐进式氧化导致在负载的CO / Pt纳米结构的表面上形成厚的CoO层。该方法伴随着CEO2(111)膜的崩解和通过CEO 2涂覆氧化CO @ Pt纳米结构在550K以上的O-2以上的退火时,特别是在氧化和降低循环期间用O-2和H-2进行不同的温度,主要通过氧化驱动支持的CO @ Pt纳米结构的结构和化学成分的变化,同时,无论Pt-壳的初始厚度如何,还原处理几乎没有效果。 (c)中国科学院大连化学物理研究所2020年。 elsevier b.v出版。保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号