Acetylene hydrogenation on SiO2 supported gold nanoparticles

被引:0
作者
Antal Sárkány
机构
[1] Hungarian Academy of Sciences,Institute of Isotopes, Department of Surface Science and Catalysis
来源
Reaction Kinetics and Catalysis Letters | 2009年 / 96卷
关键词
Au catalyst; acetylene hydrogenation; Au particle size; selectivity; TPO measurement;
D O I
暂无
中图分类号
学科分类号
摘要
Acetylene hydrogenation has been investigated on 1.8 wt.% Au(I)/SiO2 and 1.9wt.% Au(II)/SiO2 catalysts prepared by fixation of Au sol to SiO2 (Aerosil 200). The mean particle size measured by TEM is 3.7 and 6.1 nm, respectively. For the sake of comparison a 2.1 wt.% Au/TiO2 sample was prepared by deposition-precipitation (DP) technique (mean particle size of Au is 3.3 nm). Transformation of acetylene was measured at 5 K/min ramp rate with gas mixtures containing the reactants at H2/C2H2=2 and 70 ratios. The C2H2 content of the gas mixture was 0.11% (0.11 kPa C2H2). The activity sequence at 423 K was: Au/TiO2>Au(I)/SiO2≫Au(II)/SiO2. Both the partial pressure of hydrogen and the temperature significantly affect the activity (acetylene conversion) and ethylene selectivity. Above 500–550 K over-hydrogenation (ethane formation) and hydrogenolysis (methane formation) decrease the ethylene selectivity. Faster deactivation and larger amount of deposit was observed on Au/TiO2 than on Au(I)/SiO2. A reaction scheme is proposed suggesting formation of sigma bonded intermediates as sp carbon hybridises to sp2 and sp3.
引用
收藏
页码:43 / 54
页数:11
相关论文
共 50 条
  • [21] ADSORPTION AND CATALYTIC PROPERTIES OF PD/SIO2, CU/SIO2, AND PD-CU/SIO2 SYSTEMS .3. CARBON-MONOXIDE AND BENZENE HYDROGENATION OVER PD-CU/SIO2 CATALYSTS
    LEON Y LEON, CA
    VANNICE, MA
    APPLIED CATALYSIS, 1991, 69 (02): : 305 - 321
  • [22] CARBON-MONOXIDE ADSORPTION AND HYDROGENATION ON CU-RH SIO2 CATALYSTS
    KRISHNAMURTHY, R
    CHUANG, SSC
    GHOSAL, K
    APPLIED CATALYSIS A-GENERAL, 1994, 114 (01) : 109 - 125
  • [23] The selective hydrogenation of acetylene in the presence of carbon monoxide over Ni and Ni-Zn supported on MgAl2O4
    Trimm, David L.
    Cant, Noel W.
    Liu, Irene O. Y.
    CATALYSIS TODAY, 2011, 178 (01) : 181 - 186
  • [24] Modelling kinetics and deactivation for the selective hydrogenation of an aromatic ketone over Pd/SiO2
    Thakar, Nakul
    Berger, Rob J.
    Kapteijn, Freek
    Moulijn, Jacob A.
    CHEMICAL ENGINEERING SCIENCE, 2007, 62 (18-20) : 5322 - 5329
  • [25] Enhanced Ethylene Production from Electrocatalytic Acetylene Semi-hydrogenation Over Porous Carbon-Supported Cu Nanoparticles
    Li, Li
    Chen, Fanpeng
    Zhao, Bo-Hang
    Yu, Yifu
    TRANSACTIONS OF TIANJIN UNIVERSITY, 2024, 30 (04) : 297 - 304
  • [26] Performance of shape-controlled Pd nanoparticles in the selective hydrogenation of acetylene
    Kim, Seok Ki
    Kim, Cheonghee
    Lee, Ji Hoon
    Kim, Jaeyoung
    Lee, Hyunjoo
    Moon, Sang Heup
    JOURNAL OF CATALYSIS, 2013, 306 : 146 - 154
  • [27] CO2 hydrogenation to methane over mesoporous Co/SiO2 catalysts: Effect of structure
    Zhou, Guilin
    Liu, Huiran
    Xing, Yingzhi
    Xu, Shiyu
    Xie, Hongmei
    Xiong, Kun
    JOURNAL OF CO2 UTILIZATION, 2018, 26 : 221 - 229
  • [28] Preparation of gold catalysts supported on SiO2-TiO2 for the CO PROX reaction
    Gonzalo-Chacon, L.
    Bachiller-Baeza, B.
    Guerrero-Ruiz, A.
    Rodriguez-Ramos, I.
    SCIENTIFIC BASES FOR THE PREPARATION OF HETEROGENEOUS CATALYSTS: PROCEEDINGS OF THE 10TH INTERNATIONAL SYMPOSIUM, 2010, 175 : 719 - 722
  • [29] Superior Stability of Au/SiO2 Compared to Au/TiO2 Catalysts for the Selective Hydrogenation of Butadiene
    Masoud, Nazila
    Delannoy, Laurent
    Schaink, Herrick
    van der Eerden, Ad
    de Rijk, Jan Willem
    Silva, Tiago A. G.
    Banerjee, Dipanjan
    Meeldijk, Johannes D.
    de Jong, Krijn P.
    Louis, Catherine
    de Jongh, Petra E.
    ACS CATALYSIS, 2017, 7 (09): : 5594 - 5603
  • [30] Effect of micropores on the structure and CO2 methanation performance of supported Ni/SiO2 catalyst
    Shen, Liang
    Zhu, Minghui
    Xu, Jing
    GREENHOUSE GASES-SCIENCE AND TECHNOLOGY, 2021, 11 (06): : 1213 - 1221