The support effect on the performance of a MOF-derived Co-based nano-catalyst in Fischer Tropsch synthesis

被引:2
|
作者
Yazd, Masoud Safari [1 ]
Motahari, Sirous [2 ]
Rahimpour, Mohammad Reza [2 ]
Moorjani, Sadegh Froud [1 ]
Bazghaleh, Farshid Sobhani [1 ]
机构
[1] Tarbiat Modares Univ, Fac Chem Engn, Dept Proc, Tehran, Iran
[2] Shiraz Univ, Dept Chem Engn, Shiraz, Iran
关键词
WATER-GAS SHIFT; THERMAL-STABILITY; OXYGEN VACANCIES; CHAIN GROWTH; CERIA; TEMPERATURE; SELECTIVITY; DYNAMICS; ZRO2; NANOPARTICLES;
D O I
10.1039/d4nr02499k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The catalyst plays a central role in the Fischer-Tropsch synthesis (FTS) process, and the choice of catalyst support significantly impacts FTS catalyst performance by enhancing its attributes. In this study, the effects of utilizing various metal oxides-CeO2, ZrO2, and TiO2-on a cobalt-based FTS nanocatalyst are investigated by evaluating the catalyst's reducibility, stability, syngas chemisorption, intermediate species spillover, charge transfer, and metal-support interaction (MSI). This evaluation is conducted both theoretically and experimentally through diverse characterization tests and molecular dynamics (MD) simulations. Characterization tests reveal that the ceria-supported catalyst (Ceria Nano Catalyst, CNC) demonstrates the highest reducibility, stability, CO chemisorption, and spillover, while the zirconia-supported catalyst (Zirconia Nano Catalyst, ZNC) exhibits the highest hydrogen chemisorption and spillover. The MD simulation results align well with these findings; for instance, ZNC has the lowest hydrogen adsorption enthalpy (Delta HAds.), whereas CNC has the lowest Delta HAds. for CO. Additionally, MD simulations indicate that the titania-supported catalyst (Titania Nano Catalyst, TNC) possesses the highest MSI value, closely resembling that of ZNC, albeit with a minor difference. The TNC catalyst's performance in other tests is also similar to that of ZNC. Finally, FTS performance tests illustrate that the ZNC catalyst achieves the highest CO conversion at 88.1%, while the CNC catalyst presents the lowest CO conversion at 82.2%. Notably, the CNC catalyst showcases the highest durability, with only a 4.4% loss in CO conversion and an 8.55% loss in C5+ yield after 192 h of operation. The catalyst plays a central role in the Fischer-Tropsch synthesis (FTS) process, and the choice of catalyst support significantly impacts FTS catalyst performance by enhancing its attributes.
引用
收藏
页码:19422 / 19444
页数:23
相关论文
共 50 条
  • [31] Fischer-Tropsch synthesis: Effect of ammonia in syngas on the Fischer-Tropsch synthesis performance of a precipitated iron catalyst
    Ma, Wenping
    Jacobs, Gary
    Sparks, Dennis E.
    Pendyala, Venkat Ramana Rao
    Hopps, Shelley G.
    Thomas, Gerald A.
    Hamdeh, Hussein H.
    MacLennan, Aimee
    Hu, Yongfeng
    Davis, Burtron H.
    JOURNAL OF CATALYSIS, 2015, 326 : 149 - 160
  • [32] Highly active and controllable MOF-derived carbon nanosheets supported iron catalysts for Fischer-Tropsch synthesis
    Zhao, Qiao
    Huang, Shouying
    Han, Xiaoxue
    Chen, Jiajia
    Wang, Junhu
    Rykov, Alexandre
    Wang, Yue
    Wang, Meiyan
    Lv, Jing
    Ma, Xinbin
    CARBON, 2021, 173 : 364 - 375
  • [33] Effect of strain on the performance of iron-based catalyst in Fischer-Tropsch synthesis
    Xue, Yingying
    Ge, Hui
    Chen, Zheng
    Zhai, Yongbiao
    Zhang, Juan
    Sun, Jiaqiang
    Abbas, Mohamed
    Lin, Ke
    Zhao, Wentao
    Chen, Jiangang
    JOURNAL OF CATALYSIS, 2018, 358 : 237 - 242
  • [34] Effect of ZnAl2O4 morphologies on the catalytic performance of Co-based catalysts in Fischer-Tropsch synthesis
    Yan, Junkun
    Wu, Ming
    Hong, Jingping
    Zhang, Yuhua
    Li, Jinlin
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [35] Investigation of Mixtures of a Co-Based Catalyst and a Cu-Based Catalyst for the Fischer–Tropsch Synthesis with Bio-Syngas: The Importance of Indigenous Water
    Matteo Lualdi
    Sara Lögdberg
    Francesco Regali
    Magali Boutonnet
    Sven Järås
    Topics in Catalysis, 2011, 54
  • [36] Key Role of CO Coverage for Chain Growth in Co-Based Fischer-Tropsch Synthesis
    Rommens, Konstantijn T.
    Gunasooriya, G. T. Kasun Kalhara
    Saeys, Mark
    ACS CATALYSIS, 2024, 14 (09) : 6696 - 6709
  • [37] On the effect of water on the Fischer-Tropsch rate over a Co-based catalyst: The influence of the H2/CO ratio
    Lualdi, Matteo
    Logdberg, Sara
    Boutonnet, Magali
    Jaras, Sven
    CATALYSIS TODAY, 2013, 214 : 25 - 29
  • [38] Preliminary evaluation of a commercially viable Co-based hybrid catalyst system in Fischer-Tropsch synthesis combined with hydroprocessing
    Yakovenko, Roman E.
    Savost'yanov, Alexander P.
    Narochniy, Grigoriy B.
    Soromotin, Vitaliy N.
    Zubkov, Ivan N.
    Papeta, Olga P.
    Svetogorov, Roman D.
    Mitchenko, Serge A.
    Catalysis Science and Technology, 2020, 10 (22): : 7613 - 7629
  • [39] Optimization of reaction parameters of Fischer-Tropsch synthesis in the presence of Co-V/Al2O3 nano-catalyst
    Hafizi, Ali
    Koolivand-Salooki, Mehdi
    Esfandyari, Morteza
    Koulivand, Mohsen
    Fallahiyekta, Mohammad
    INTERNATIONAL JOURNAL OF CHEMICAL KINETICS, 2022, 8 (488-504) : 488 - 504
  • [40] Preliminary evaluation of a commercially viable Co-based hybrid catalyst system in Fischer-Tropsch synthesis combined with hydroprocessing
    Yakovenko, Roman E.
    Savost'yanov, Alexander P.
    Narochniy, Grigoriy B.
    Soromotin, Vitaliy N.
    Zubkov, Ivan N.
    Papeta, Olga P.
    Svetogorov, Roman D.
    Mitchenko, Serge A.
    CATALYSIS SCIENCE & TECHNOLOGY, 2020, 10 (22) : 7613 - 7629