Reshaping the Role of CO2 in Propane Dehydrogenation: From Waste Gas to Platform Chemical

被引:28
|
作者
Rigamonti, Marco G. [1 ]
Shah, Meera [1 ]
Gambu, Thobani G. [2 ]
Saeys, Mark [2 ]
Dusselier, Michiel [1 ]
机构
[1] Katholieke Univ Leuven, Ctr Sustainable Catalysis & Engn CSCE, B-3001 Heverlee, Belgium
[2] Univ Ghent, Lab Chem Technol, B-9052 Ghent, Belgium
来源
ACS CATALYSIS | 2022年 / 12卷 / 15期
关键词
CO2-ODHP; LCA; Tamman; redox mechanism; propane dehydrogenation; CO2 soft oxidation; CHROMIUM-OXIDE CATALYSTS; LIFE-CYCLE ASSESSMENT; OXIDATIVE DEHYDROGENATION; CARBON-DIOXIDE; PROPYLENE PRODUCTION; N-BUTANE; DEACTIVATION; KINETICS; VANADIUM; ZEOLITE;
D O I
10.1021/acscatal.2c01374
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 valorization of CO2 appeals to the chemical industry due to the reduction in greenhouse gas emissions and the ability to offer more renewable products. Propylene production is the second largest process in the chemical industry, and it strongly depends on fossil fuel feedstocks. Coupling CO2 reduction with propane dehydrogenation boosts conversion and produces CO, a valuable platform chemical currently synthesized by fossil-methane reforming. In this work, (i) we demonstrate the environmental benefits of coupling CO2 with a life-cycle assessment under industrial conditions, potentially reducing emissions by 3 t(CO)(2-eq) per ton of propylene produced. (ii) We screen supported catalytic materials-both known and novel-with a focus on propane and CO2 reaction mechanisms under industrial reaction conditions of 400-700 degrees C and pressures of 1-6 barg (redox: V, Galinstan, In, Mo, Mn, Bi, Sb, To; nonredox: Cr, Ga, co, Al, Zn, Au, Zr, Ag, W, La, Cu; and some alloy combinations). We evaluate each material under the kinetic regime, and we quantify reaction, side reaction, and deactivation kinetics (coking, cracking, and dry-reforming), as well as the regeneration ability. We then classify them based on their dominant mechanisms (direct CO2 assistance or indirect with H-2 via reverse water gas shift) and identify each catalyst's strengths and weaknesses. Finally, (iii) we correlate our database of experimental results of 22 active metals/metal oxides with the Tamman temperature and density functional theory (DFT)-based oxygen vacancy formation energies. We discovered that oxygen mobility plays a crucial role in the kinetics of reoxidation with CO2 and the overall balance of active sites related to dehydrogenation and reoxidation.
引用
收藏
页码:9339 / 9358
页数:20
相关论文
共 50 条
  • [41] Activated carbon-boosted BiOI in CO2 adsorption and electron transfer for photothermally catalyzed CO2 oxidative dehydrogenation of propane
    Miao, Run-Qing
    He, Zhen-Hong
    Wu, Bao-Ting
    Liu, Jiajie
    Wang, Sen-Wang
    Wang, Kuan
    Wang, Weitao
    Li, Lu
    Liu, Zhao-Tie
    CHEMICAL ENGINEERING JOURNAL, 2024, 481
  • [42] The active role of CO2 at low temperature in oxidation processes:: the case of the oxidative dehydrogenation of propane on NiMoO4 catalysts
    Dury, F
    Gaigneaux, EM
    Ruiz, P
    APPLIED CATALYSIS A-GENERAL, 2003, 242 (01) : 187 - 203
  • [43] Cu modified VOx/Silicalite-1 catalysts for propane dehydrogenation in CO2 atmosphere
    Chen, Yan
    Wang, Yuan
    Ma, Qingxiang
    Gao, Xinhua
    Zhao, Tian-Sheng
    FUEL, 2024, 363
  • [44] Reaction Mechanism of CO2 -Assisted Dehydrogenation of Propane Over Pt-Based Catalysts
    Yang, Qian
    Nie, Xiaowa
    Ding, Fanshu
    Guo, Xinwen
    Shiyou Xuebao, Shiyou Jiagong/Acta Petrolei Sinica (Petroleum Processing Section), 2024, 40 (02): : 480 - 492
  • [45] Effect of the introduction of alkaline promoters into chromium oxide catalysts for propane dehydrogenation in the presence of CO2
    A. L. Lapidus
    Yu. A. Agafonov
    N. A. Gaidai
    D. V. Trushin
    N. V. Nekrasov
    Solid Fuel Chemistry, 2012, 46 : 14 - 22
  • [46] Phase equilibrium for (camphor + CO2), (camphor plus propane), and (camphor + CO2 + propane)
    Carvalho, Raul N., Jr.
    Corazza, Marcos L.
    Cardozo-Filho, Lucio
    Meireles, M. Angela A.
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2006, 51 (03): : 997 - 1000
  • [47] Promotional Effect of Ni on a CrOx Catalyst Supported on Silica in the Oxidative Dehydrogenation of Propane with CO2
    Yun, Danim
    Baek, Jayeon
    Choi, Youngbo
    Kim, Wooyoung
    Lee, Hee Jong
    Yi, Jongheop
    CHEMCATCHEM, 2012, 4 (12) : 1952 - 1959
  • [48] Support effect in dehydrogenation of propane in the presence Of CO2 over supported gallium oxide catalysts
    Xu, BJ
    Zheng, B
    Hua, WM
    Yue, YH
    Gao, Z
    JOURNAL OF CATALYSIS, 2006, 239 (02) : 470 - 477
  • [49] Effects of Support and CO2 on the Performances of Vanadium Oxide-Based Catalysts in Propane Dehydrogenation
    Shan, Yu-Ling
    Sun, Huai-Lu
    Zhao, Shi-Lei
    Tang, Pei-Long
    Zhao, Wen-Ting
    Ding, Jun-Wei
    Yu, Wen-Long
    Li, Li-Na
    Feng, Xiang
    Chen, De
    ACS CATALYSIS, 2022, 12 (10) : 5736 - 5749
  • [50] CO in situ directed highly efficient CrOx@silicalite-1 for propane oxidation dehydrogenation by CO2
    Wu, Ruiqi
    Liu, Ning
    Dai, Chengna
    Yu, Gangqiang
    Xu, Ruinian
    Chen, Biaohua
    CATALYSIS TODAY, 2024, 436