Non-conventional low-temperature reverse water-gas shift reaction over highly dispersed Ru catalysts in an electric field

被引:8
|
作者
Yamano, Ryota [1 ]
Ogo, Shuhei [2 ]
Nakano, Naoya [1 ]
Higo, Takuma [1 ]
Sekine, Yasushi [1 ]
机构
[1] Waseda Univ, Dept Appl Chem, 3-4-1 Okubo,Shinjuku, Tokyo 1698555, Japan
[2] Kochi Univ, Fac Agr & Marine Sci, Dept Marine Resources Sci, Nankoku 7838502, Japan
来源
EES CATALYSIS | 2023年 / 1卷 / 02期
关键词
SIZE-CONTROLLED SYNTHESIS; CO2; HYDROGENATION; METHANOL SYNTHESIS; SURFACE PROTONICS; NANOPARTICLES; DRIFTS; OXIDE; MECHANISM; PERFORMANCE; METHANATION;
D O I
10.1039/d2ey00004k
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
The reverse water-gas shift (RWGS) reaction, a promising carbon-recycling reaction, was investigated by applying an electric field to promote the reaction at a temperature of 473 K or lower. The highly dispersed Ru/ZrTiO4 catalysts with an approximately 2 nm particle size of Ru showed high RWGS activity with a DC electric field below 473 K, whereas CO2 methanation proceeded predominantly over catalysts with larger Ru particles. The RWGS reaction in the electric field maintained high CO selectivity, suppressing CO hydrogenation into CH4 on the Ru surface by virtue of promoted hydrogen migration (surface protonics). The reaction mechanisms of the non-conventional low-temperature reverse water gas shift reaction were investigated and revealed using various characterization methods including in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS) measurements. With the DC electric field, the reaction proceeds via a redox reaction where the generated oxygen vacancies are involved in CO2 activation at low temperatures. As a result, the electric field promotes both hydrogen migration and redox reactions using lattice oxygen/vacancies, resulting in high RWGS activity and selectivity even at low temperatures.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Application of Au/TiO2 catalysts in the low-temperature water-gas shift reaction
    Perez, Patricia
    Soria, Miguel A.
    Carabineiro, Sonia A. C.
    Maldonado-Hodar, Francisco J.
    Mendes, Adelio
    Madeira, Luis M.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (08) : 4670 - 4681
  • [22] Low-temperature water-gas shift reaction over Cu- and Ni-loaded cerium oxide catalysts
    Li, Y
    Fu, Q
    Flytzani-Stephanopoulos, M
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2000, 27 (03) : 179 - 191
  • [23] Low temperature catalytic reverse water gas shift reaction assisted by an electric field
    Oshima, Kazumasa
    Shinagawa, Tatsuya
    Nogami, Yukako
    Manabe, Ryo
    Ogo, Shuhei
    Sekine, Yasushi
    CATALYSIS TODAY, 2014, 232 : 27 - 32
  • [24] Dispersion of copper on ceria for the low-temperature water-gas shift reaction
    Ning, Jing
    Zhou, Yan
    Chen, Aling
    Li, Yong
    Miao, Shu
    Shen, Wenjie
    CATALYSIS TODAY, 2020, 357 : 460 - 467
  • [25] Low-temperature water-gas shift reaction over cobalt-molybdenum carbide catalyst
    Nagai, M
    Matsuda, K
    JOURNAL OF CATALYSIS, 2006, 238 (02) : 489 - 496
  • [26] Low-temperature water-gas shift reaction over gold deposited on TiO2
    Sakurai, H
    Ueda, A
    Kobayashi, T
    Haruta, M
    CHEMICAL COMMUNICATIONS, 1997, (03) : 271 - 272
  • [27] Reverse Water-Gas Shift Reaction Catalyzed by Mononuclear Ru Complexes
    Tsuchiya, Kazuyoshi
    Huang, Jia-Di
    Tominaga, Ken-ichi
    ACS CATALYSIS, 2013, 3 (12): : 2865 - 2868
  • [28] KINETICS OF THE WATER-GAS SHIFT REACTION OVER SEVERAL ALKANE ACTIVATION AND WATER-GAS SHIFT CATALYSTS
    KEISKI, RL
    DESPONDS, O
    CHANG, YF
    SOMORJAI, GA
    APPLIED CATALYSIS A-GENERAL, 1993, 101 (02) : 317 - 338
  • [29] Highly efficient copper-manganese oxide catalysts with abundant surface vacancies for low-temperature water-gas shift reaction
    Lang, Yun
    Du, Chun
    Tang, Yuanting
    Chen, Yongjie
    Zhao, Yunkun
    Chen, Rong
    Liu, Xiao
    Shan, Bin
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (15) : 8629 - 8639