Combination of a reaction cell and an ultra-high vacuum system for the in situ preparation and characterization of a model catalyst

被引:0
|
作者
Zang, Yi-Jing [1 ,4 ]
Shi, Shu-Cheng [2 ]
Han, Yong [2 ,3 ]
Zhang, Hui [1 ]
Wang, Wei-Jia [2 ]
Liu, Peng [3 ]
Ye, Mao [1 ]
Liu, Zhi [1 ,2 ,3 ]
机构
[1] Chinese Acad Sci, Shanghai Inst Microsyst & Informat Technol, State Key Lab Funct Mat Informat, Shanghai 200050, Peoples R China
[2] ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China
[3] ShanghaiTech Univ, Ctr Transformat Sci, Shanghai 201210, Peoples R China
[4] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Surface science; Model catalysts; Ultra-high vacuum; Temperature-programmed desorption; In situ reaction cell; SURFACE ORIENTATION; CO2; ACTIVATION; METHANOL; ADSORPTION; HYDROGENATION; CHEMISTRY; NI(111);
D O I
10.1007/s41365-023-01228-w
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
An in-depth understanding of the structure-activity relationship between the surface structure, chemical composition, adsorption and desorption of molecules, and their reaction activity and selectivity is necessary for the rational design of high-performance catalysts. Herein, we present a method for studying catalytic mechanisms using a combination of in situ reaction cells and surface science techniques. The proposed system consists of four parts: preparation chamber, temperature-programmed desorption (TPD) chamber, quick load-lock chamber, and in situ reaction cell. The preparation chamber was equipped with setups based on the surface science techniques used for standard sample preparation and characterization, including an Ar+ sputter gun, Auger electron spectrometer, and a low-energy electron diffractometer. After a well-defined model catalyst was prepared, the sample was transferred to a TPD chamber to investigate the adsorption and desorption of the probe molecule, or to the reaction cell, to measure the catalytic activity. A thermal desorption experiment for methanol on a clean Cu(111) surface was conducted to demonstrate the functionality of the preparation and TPD chambers. Moreover, the repeatability of the in situ reaction cell experiment was verified by CO2 hydrogenation on the Ni(110) surface. At a reaction pressure of 800 Torr at 673 K, turnover frequencies for the methanation reaction and reverse water-gas shift reaction were 0.15 and 7.55 Ni atom(-1) s(-1), respectively.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Combination of a reaction cell and an ultra-high vacuum system for the in situ preparation and characterization of a model catalyst
    Yi-Jing Zang
    Shu-Cheng Shi
    Yong Han
    Hui Zhang
    Wei-Jia Wang
    Peng Liu
    Mao Ye
    Zhi Liu
    Nuclear Science and Techniques, 2023, 34
  • [2] Combination of a reaction cell and an ultra-high vacuum system for the in situ preparation and characterization of a model catalyst
    Yi-Jing Zang
    Shu-Cheng Shi
    Yong Han
    Hui Zhang
    Wei-Jia Wang
    Peng Liu
    Mao Ye
    Zhi Liu
    Nuclear Science and Techniques, 2023, 34 (05) : 17 - 25
  • [3] ULTRA-HIGH VACUUM SYSTEM
    TURNER, JA
    HOFFMAN, GR
    PICKARD, RM
    JOURNAL OF SCIENTIFIC INSTRUMENTS, 1962, 39 (01): : 26 - &
  • [4] PREPARATION OF SRCUOY FILM IN ULTRA-HIGH VACUUM-SYSTEM
    TSUKAHARA, T
    YOSHIMOTO, M
    NAGATA, H
    HASHIMOTO, T
    GONDA, S
    KOINUMA, H
    SOLID STATE IONICS, 1991, 49 : 183 - 186
  • [5] An in situ electrical transport measurement system under ultra-high vacuum
    Cui, Wenqiang
    Zheng, Cheng
    Zhang, Liguo
    Kang, Zhixin
    Li, Luxin
    Cai, Xinqiang
    Zhao, Dapeng
    Hu, Xiaopeng
    Chen, Xi
    Wang, Yilin
    Wang, Lili
    Wang, Yayu
    Ma, Xucun
    Xue, Qi-Kun
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2020, 91 (06):
  • [6] CSRm Ultra-High Vacuum System
    杨晓天
    蒙峻
    张军辉
    张喜平
    胡振军
    侯生军
    张新俊
    郝斌干
    吴慧敏
    Plasma Science & Technology, 2005, (05) : 39 - 42
  • [7] CSRm ultra-high vacuum system
    Yang, XT
    Jun, M
    Zhang, JH
    Zhang, XP
    Hu, ZJ
    Hou, SJ
    Zhang, XJ
    Hao, BG
    Wu, HM
    PLASMA SCIENCE & TECHNOLOGY, 2005, 7 (05) : 3021 - 3024
  • [8] Electrochemistry in ultra-high vacuum: The fully transferrable ultra-high vacuum compatible electrochemical cell
    Kerger, P.
    Vogel, D.
    Rohwerder, M.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2018, 89 (11):
  • [9] An integrated ultra-high vacuum apparatus for growth and in situ characterization of complex materials
    Vinai, G.
    Motti, F.
    Petrov, A. Yu
    Polewczyk, V
    Bonanni, V
    Edla, R.
    Gobaut, B.
    Fujii, J.
    Suran, F.
    Benedetti, D.
    Salvador, F.
    Fondacaro, A.
    Rossi, G.
    Panaccione, G.
    Davidson, B. A.
    Torelli, P.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2020, 91 (08):
  • [10] In-situ ultra-high vacuum spectroscopic ellipsometry
    Fukazawa, T
    Ishihara, K
    Hoshi, Y
    Kawabata, S
    INTERNATIONAL SYMPOSIUM ON POLARIZATION ANALYSIS AND APPLICATIONS TO DEVICE TECHNOLOGY, 1996, 2873 : 180 - 183