The characterization of a highly effective NiO/MgO solid solution catalyst in the CO2 reforming of CH4

被引:130
|
作者
Hu, YH
Ruckenstein, E
机构
[1] SUNY BUFFALO, DEPT CHEM ENGN, AMHERST, NY 14260 USA
[2] XIAMEN UNIV, DEPT CHEM, XIAMEN 361005, PEOPLES R CHINA
关键词
NiO; MgO; solid solution; XPS; XRD; pulse-MS; CO2 reforming of methane;
D O I
10.1023/A:1018982304573
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A NiO/MgO catalyst prepared by impregnation, which reduced in H-2 had very high CO yield and stability in CO2 reforming of methane, was investigated by XPS, XRD, BET and pulse-MS response. This catalyst was compared to that obtained by mechanical mixing of powders of the two oxides. It was found that the entire NiO formed a solid solution with MgO in the former catalyst, while only a fraction of NiO formed a solid solution with MgO in the latter one. BET revealed that, in contrast to NiO and MgO, the NiO/MgO catalyst prepared by impregnation had a high stability to sintering, because its surface area hardly changed during calcination from 1.5 to 20 h at 800 degrees C. In the same catalyst, a surface enrichment in MgO, which was greater after than before reduction, was detected. Compared to MgO or NiO, this catalyst had a lower Mg(2p) and a higher Ni(2p(3/2)) binding energy. This indicates that electron transfer from NiO to MgO took place, which, increasing the binding between the two oxides, might be responsible for the resistance of the solid solution to sintering. Because of the interactions between Ni and Mg, the clustering of Ni, which stimulates carbon deposition is inhibited. This explains the high stability of the CO yield in the CO2 reforming of methane over the NiO/MgO catalyst prepared by impregnation. The pulse-MS response suggested that the decompositions of CO2 to CO and O and of CH4 to C and H are involved in the reaction mechanism of CO2 reforming of methane over the reduced NiO-MgO solid solution catalyst.
引用
收藏
页码:71 / 77
页数:7
相关论文
共 50 条
  • [21] Effects of pressure on CO2 reforming of CH4 over carbonaceous catalyst
    Zhang, Yongfa
    Zhang, Guojie
    Zhang, Bingmo
    Guo, Fengbo
    Sun, Yaling
    [J]. CHEMICAL ENGINEERING JOURNAL, 2011, 173 (02) : 592 - 597
  • [22] Effects of supports on the activity of nickel catalyst for CH4 reforming with CO2
    Li, WY
    Feng, J
    Xie, KC
    Guo, SC
    [J]. PETROLEUM SCIENCE AND TECHNOLOGY, 1997, 15 (3-4) : 297 - 306
  • [23] Rhodium on tungsten carbide - A new catalyst for reforming CH4 with CO2
    Volter, J
    Berndt, H
    Lietz, G
    Preiss, H
    Tamme, R
    [J]. CHEMIE INGENIEUR TECHNIK, 1997, 69 (1-2) : 83 - 87
  • [24] FROM CH4 REFORMING WITH CO2 TO PYROLYSIS OVER A PLATINUM CATALYST
    YU, ZG
    CHOI, K
    ROSYNEK, MP
    LUNSFORD, JH
    [J]. REACTION KINETICS AND CATALYSIS LETTERS, 1993, 51 (01): : 143 - 149
  • [25] Effect of pore structure on Ni catalyst for CO2 reforming of CH4
    Sun, Nannan
    Wen, Xia
    Wang, Feng
    Wei, Wei
    Sun, Yuhan
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (03) : 366 - 369
  • [26] Ni/ZSM-5 catalyst for CH4 reforming with CO2
    Li, WY
    Feng, J
    Xie, KC
    [J]. PETROLEUM SCIENCE AND TECHNOLOGY, 1998, 16 (5-6) : 539 - 553
  • [27] Preparation and characterization of nickel-titanium composite xerogel catalyst for CO2 reforming of CH4
    Sun, H.
    Wang, H.
    Zhang, J.
    [J]. APPLIED CATALYSIS B-ENVIRONMENTAL, 2007, 73 (1-2) : 158 - 165
  • [28] CO2 reforming of CH4 over a highly active and stable Ni-Mg-Al catalyst
    Feng, Xiang-Dong
    Feng, Jie
    Li, Wen-Ping
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (05) : 3036 - 3042
  • [29] Plasma Promotes Dry Reforming Reaction of CH4 and CO2 at Room Temperature with Highly Dispersed NiO/γ-Al2O3 Catalyst
    Lin, Shan-Shan
    Li, Peng-Rui
    Jiang, Hui-Bo
    Diao, Jian-Feng
    Xu, Zhong-Ning
    Guo, Guo-Cong
    [J]. CATALYSTS, 2021, 11 (12)
  • [30] Sensitivity of the properties and performance of Co catalyst to the nature of support for CO2 reforming of CH4
    Alabi, Wahab O.
    Sulaiman, Kazeem O.
    Wang, Hui
    [J]. CHEMICAL ENGINEERING JOURNAL, 2020, 390