The Effect of H2 Pressure on the Carbon Path of Methanation Reaction on Co/γ-Al2O3: Transient Isotopic and Operando Methodology Studies

被引:24
作者
Vasiliades, Michalis A. [1 ]
Govender, Nilenindran S. [2 ]
Govender, Ashriti [2 ]
Crous, Renier [2 ]
Moodley, Denzil [2 ]
Botha, Thys [2 ]
Efstathiou, Angelos M. [1 ]
机构
[1] Univ Cyprus, Dept Chem, Heterogeneous Catalysis Lab, CY-2109 Nicosia, Cyprus
[2] Sasol South Africa, Res & Technol, Energy Operat & Technol, ZA-1947 Sasolburg, South Africa
关键词
methanation reaction; SSITKA; Al2O3-supported Co; transient DRIFTS-CO hydrogenation; operando methodology; FISCHER-TROPSCH SYNTHESIS; COBALT PARTICLE-SIZE; GAS SHIFT REACTION; CO ACTIVATION; SYNTHESIS CATALYSTS; REACTION-MECHANISM; MANGANESE OXIDE; CO/H-2; REACTION; HYDROGENATION; SELECTIVITY;
D O I
10.1021/acscatal.2c04269
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 effect of H-2 partial pressure in a wide range (P-H2 = 0.12-0.6 bar, or H-2/CO gas ratio of 2-10; P-CO = 0.06 bar) on important kinetic parameters of the methanation reaction at 230 degrees C on a commercially relevant Co/gamma-Al2O3 catalyst was investigated using steady-state isotopic transient kinetic analysis (SSITKA) and operando transient DRIFTS-mass spectrometry methodology. The quantification of the dynamic evolution of the net rate of (CO)-C-13 adsorption and that of active (CHx)-C-13-s formation under Fischer-Tropsch synthesis (FTS) reaction conditions upon the (CO)-C-12/H-2 ->(CO)-C-13/H-2 SSITKA step-gas switch suggested the participation of more than one kind of active -CHx intermediates in FTS and the independence of CO adsorption dynamics on the H-2 pressure. Transient operando DRIFTS-MS isothermal hydrogenation studies coupled with kinetic modeling (H-assisted CO dissociation) allowed to estimate the different reactivity (k(eff)) of two linear types of adsorbed CO-s and their relative intrinsic activity (k), as well as the change in the surface coverage of H-s (theta(H)) as a function of P-H2 under FTS at 230 degrees C. A monotonic but small decrease of k with increasing PH2 was observed for both types of linear CO-s. The dependence of TOFCH4 (s(-1)) on P-H2 was better understood based on the determination of the dependence of surface coverages of CO-s and active -CHx species and that of k(eff) (s(-1)) on P-H2, but also on the change of theta(H) with P-H2. It was proved that variation of TOFCH4 with PH2 was largely governed by the variation of theta(Eta) with H-2 pressure considering an H-assisted CO hydrogenation to CH4 mechanism. Transient isothermal hydrogenation at 230 degrees C revealed the presence of inactive -CxHy (C-beta) species, while temperature-programmed hydrogenation the presence of other three types of less active (C gamma(1)-C gamma(3)) carbonaceous species, the amounts and reactivity of which were determined as a function of hydrogen pressure.
引用
收藏
页码:15110 / 15129
页数:20
相关论文
共 50 条
[31]   Improving the Hydrogenation Function of Pd/γ-Al2O3 Catalyst by Rh/γ-Al2O3 Addition in CO2 Methanation at Low Temperature [J].
Karelovic, Alejandro ;
Ruiz, Patricio .
ACS CATALYSIS, 2013, 3 (12) :2799-2812
[32]   3D printed Ni/Al2O3 based catalysts for CO2 methanation - a comparative and operando XRD-CT study [J].
Middelkoop, Vesna ;
Vamvakeros, Antonis ;
de Wit, Dieter ;
Jacques, Simon D. M. ;
Danaci, Simge ;
Jacquot, Clement ;
de Vos, Yoran ;
Matras, Dorota ;
Price, Stephen W. T. ;
Beale, Andrew M. .
JOURNAL OF CO2 UTILIZATION, 2019, 33 :478-487
[33]   Preferential CO Oxidation in H2 over Au/La2O3/Al2O3 Catalysts: The Effect of the Catalyst Reduction Method [J].
Lakshmanan, Pandian ;
Park, Eun Duck .
CATALYSTS, 2018, 8 (05)
[34]   The effect of CO on CO2 methanation over Ru/Al2O3 catalysts: a combined steady-state reactivity and transient DRIFT spectroscopy study [J].
Falbo, Leonardo ;
Visconti, Carlo G. ;
Lietti, Luca ;
Szanyi, Janos .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2019, 256
[35]   CO2 methanation reaction pathways over unpromoted and NaNO3-promoted Ru/Al2O3 catalysts [J].
Park, Sang Jae ;
Wang, Xiang ;
Ball, Madelyn R. ;
Proano, Laura ;
Wu, Zili ;
Jones, Christopher W. .
CATALYSIS SCIENCE & TECHNOLOGY, 2022, 12 (14) :4637-4652
[36]   Promoted Ru/Al2O3 catalysts with improved low-temperature activity for CO2 methanation reaction [J].
Chen, Rong ;
Shen, Liang ;
Zhang, Wenhao ;
Han, Yi-Fan ;
Yang, Zixu ;
Zhu, Minghui .
GREENHOUSE GASES-SCIENCE AND TECHNOLOGY, 2023, 13 (03) :396-408
[37]   Isotopic and in situ DRIFTS study of the CO2 methanation mechanism using Ni/CeO2 and Ni/Al2O3 catalysts [J].
Cardenas-Arenas, A. ;
Quindimil, A. ;
Davo-Quinonero, A. ;
Bailon-Garcia, E. ;
Lozano-Castello, D. ;
De-La-Torre, U. ;
Pereda-Ayo, B. ;
Gonzalez-Marcos, J. A. ;
Gonzalez-Velasco, J. R. ;
Bueno-Lopez, A. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2020, 265
[38]   Methanation of CO2 over zeolite-promoted Ni/Al2O3 nanocatalyst under atmospheric pressure [J].
Isah, Abdullahi ;
Akanyeti, Ime ;
Oladipo, Akeem Adeyemi .
REACTION KINETICS MECHANISMS AND CATALYSIS, 2020, 130 (01) :217-228
[39]   STUDIES ON MECHANISM OF CO HYDROGENATION OVER NI/AL2O3 [J].
HU, YH ;
WAN, HL ;
GUAN, YD ;
LIN, HS .
CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 1995, 16 (08) :1289-1291
[40]   Experimental Microkinetic Approach of the Surface Reconstruction of Cobalt Particles in Relationship with the CO/H2 Reaction on a Reduced 10% Co/Al2O3 Catalyst [J].
Couble, Julien ;
Bianchi, Daniel .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (28) :14544-14557