Effects of strontium and copper substitution on the catalytic performance of LaCoO3 in the combustion of methane: an optimization study
Subject Areas : Iranian Journal of CatalysisHamzeh Rezaei Shadegan 1 , Sarah Maghsoodi 2 , Bijan Ghanavati 3 , Amirhossein Shahbazi Kootenaei 4 , Alireza Azimi 5
1 - Department of Chemical Engineering, Mahshahr Branch, Islamic Azad University, Mahshahr, Iran
2 - Department of Chemical Engineering, Mahshahr Branch, Islamic Azad University, Mahshahr, Iran
3 - Department of Chemical Engineering, Mahshahr Branch, Islamic Azad University, Mahshahr, Iran
4 - Department of Chemical Engineering, Mahshahr Branch, Islamic Azad University, Mahshahr, Iran
5 - Department of Chemical Engineering, Mahshahr Branch, Islamic Azad University, Mahshahr, Iran
Keywords:
Abstract :
[1] R. Hu, R. Ding, J. Chen, J. Hu, Y. Zhang, Preparation and catalytic activities of the novel double perovskite-type oxide La2CuNiO6 for methane combustion, Catal. Commun., 21 (2012) 38-41.
[2] L. Marchetti, L. Forni, Catalytic combustion of methane over perovskites, Appl. Catal. B: Environ., 15 (1998) 179-187.
[3] R.J. Liu, P.A. Crozier, C.M. Smith, D.A. Hucul, J. Blackson, G. Salaita, Metal sintering mechanisms and regeneration of palladium/alumina hydrogenation catalysts, Appl. Catal. A, 282 (2005) 111-121.
[4] S. Royer, F. Berube, S. Kaliaguine, Effect of the synthesis conditions on the redox and catalytic properties in oxidation reactions of LaCo1−xFexO3, Appl. Catal. A, 282 (2005) 273-284.
[5] J. Yang, Y. Guo, Nanostructured perovskite oxides as promising substitutes of noble metals catalysts for catalytic combustion of methane, Chin. Chem. Lett., 29 (2018) 252-260.
[6] G. Zou, M. Chen, W. Shangguan, Promotion effects of LaCoO3 formation on the catalytic performance of Co–La oxides for soot combustion in air, Catal. Commun., 51 (2014) 68-71.
[7] I. Rossetti, L. Forni, Catalytic flameless combustion of methane over perovskites prepared by flame–hydrolysis, Appl. Catal. B: Environ., 33 (2001) 345-352.
[8] G. Pecchi, C. Campos, O. Peña, L.E. Cadus, Structural, magnetic and catalytic properties of perovskite-type mixed oxides LaMn1−yCoyO3 (y= 0.0, 0.1, 0.3, 0.5, 0.7, 0.9, 1.0), J. Mol. Catal. A: Chem., 282 (2008) 158-166.
[9] D. Maiti, Y.A. Daza, M.M. Yung, J.N. Kuhn, V.R. Bhethanabotla, Oxygen vacancy formation characteristics in the bulk and across different surface terminations of La(1−x)Sr xFe(1−y)CoyO(3−δ) perovskite oxides for CO2 conversion, J. Mater. Chem. A, 4 (2016) 5137-5148.
[10] J. Chen, M. Shen, X. Wang, J. Wang, Y. Su, Z. Zhao, Catalytic performance of NO oxidation over LaMeO3 (Me= Mn, Fe, Co) perovskite prepared by the sol–gel method, Catal. Commun., 37 (2013) 105-108.
[11] E. Campagnoli, A. Tavares, L. Fabbrini, I. Rossetti, Y.A. Dubitsky, A. Zaopo, L. Forni, La1− xAxCo1− yFeyO3±δ(A′= Ce, Sr) catalysts for the flameless combustion of methane, J. Mater. Sci., 41 (2006) 4713-4719.
[12] Y. Wu, L. Li, B. Chu, Y. Yi, Z. Qin, M. Fan, Q. Qin, H. He, L. Zhang, L. Dong, Catalytic reduction of NO by CO over B-site partially substituted LaM0. 25Co0.75O3 (M= Cu, Mn, Fe) perovskite oxide catalysts: The correlation between physicochemical properties and catalytic performance, Appl. Catal. A: General, 568 (2018) 43-53.
[13] A. Glisenti, M. Pacella, M. Guiotto, M.M. Natile, P. Canu, Largely Cu-doped LaCo1−xCuxO3 perovskites for TWC: Toward new PGM-free catalysts, Appl. Catal. B: Environ., 180 (2016) 94-105.
[14] H. Rezaei Shadegan, S. Maghsoodi, B. Ghanavati, A. Shahbazi Kootenaei, A. Azimi, Catalytic combustion of methane over La2BCoO6 perovskites containing Ni, Cu and Fe: impact of B-sites on oxygen species and catalytic activity, Reac. Kin., Mech. Catal., 131 (2020) 737-752.
[15] Z. Wang, R. Peng, W. Zhang, X. Wu, C. Xia, Y. Lu, Oxygen reduction and transport on the La1− xSrxCo1−yFeyO3− δ cathode in solid oxide fuel cells: A first-principles study, J. Mater. Chem. A, 1 (2013) 12932-12940.
[16] C.H. Kim, G. Qi, K. Dahlberg, W. Li, Strontium-doped perovskites rival platinum catalysts for treating NOx in simulated diesel exhaust, Science, 327 (2010) 1624-1627.
[17] L. Zhang, Y. Zhang, H. Dai, J. Deng, L. Wei, H. He, Hydrothermal synthesis and catalytic performance of single-crystalline La2−xSrxCuO4 for methane oxidation, Catal. Today, 153 (2010) 143-149.
[18] N. Tien-Thao, H. Alamdari, M. Zahedi-Niaki, S. Kaliaguine, LaCo1−xCuxO3−δ perovskite catalysts for higher alcohol synthesis, Appl. Catal. A, 311 (2006) 204-212.
[19] A.Z. Varzaneh, M.S. Moghaddam, J.T. Darian, Oxidative dehydrogenation of propane over vanadium catalyst supported on nano-HZSM-5, Petrol. Chem., 58 (2018) 13-21.
[20] A.Z. Varzaneh, A.H.S. Kootenaei, J. Towfighi, A. Mohamadalizadeh, Optimization and deactivation study of Fe–Ce/HZSM-5 catalyst in steam catalytic cracking of mixed ethanol/naphtha feed, J. Anal. Appl. Pyrol., 102 (2013) 144-153.
[21] Y. Wu, B. Chu, M. Zhang, Y. Yi, L. Dong, M. Fan, G. Jin, L. Zhang, B. Li, Influence of calcination temperature on the catalytic properties of LaCu0.25Co0.75O3 catalysts in NOx reduction, Appl. Surf. Sci., 481 (2019) 1277-1286.
[22] J.A. Onrubia, B. Pereda-Ayo, U. De-La-Torre, J.R. González-Velasco, Appl. Catal. B: Environ., 213 (2017) 198-210.
[23] B. Kucharczyk, K. Adamska, W. Tylus, W. Miśta, B. Szczygieł, J. Winiarski, Effect of Silver Addition to LaFeO3 Perovskite on the Activity of Monolithic La1−xAgxFeO3 Perovskite Catalysts in Methane Hexane Oxidation, Catal. Lett., 149 (2019) 1919-1933.
[24] B. Kucharczyk, W. Tylus, Metallic monolith supported LaMnO3 perovskite-based catalysts in methane combustion, Catal. Lett., 115 (2007) 122-132.
[25] K. Sutthiumporn, T. Maneerung, Y. Kathiraser, S. Kawi, CO2 dry-reforming of methane over La0.8Sr0.2Ni0.8M0.2O3 perovskite (M = Bi, Co, Cr, Cu, Fe): Roles of lattice oxygen on C–H activation and carbon suppression, Int. J. Hyd. En., 37 (2012) 11195-11207.
[26] Y. Wu, G. Li, B. Chu, L. Dong, Z. Tong, H. He, L. Zhang, M. Fan, B. Li, L. Dong, NO Reduction by CO over Highly Active and Stable Perovskite Oxide Catalysts La0.8Ce0.2M0.25Co0.75O3 (M = Cu, Mn, Fe): Effect of the Role in B Site, Indust. Eng. Chem. Res., 57 (2018) 15670-15682.
[27] G. Valderrama, A. Kiennemann, M.R. Goldwasser, La-Sr-Ni-Co-O based perovskite-type solid solutions as catalyst precursors in the CO2 reforming of methane, J. Power Sourc., 195 (2010) 1765-1771.
[28] S.S. Maluf, E.Y. Tanabe, P.A.P. Nascente, E.M. Assaf, Study of Water–Gas-Shift Reaction over La(1−y)SryNixCo(1−x)O3 Perovskite as Precursors, Topics in Catal., 54 (2011) 210-218.
[29] C. Deng, Q. Huang, X. Zhu, Q. Hu, W. Su, J. Qian, L. Dong, B. Li, M. Fan, C. Liang, Appl. Surf. Sci., 389 (2016) 1033-1049.
[30] E.J. Crumlin, E. Mutoro, W.T. Hong, M.D. Biegalski, H.M. Christen, Z. Liu, H. Bluhm, Y. Shao-Horn, In Situ Ambient Pressure X-ray Photoelectron Spectroscopy of Cobalt Perovskite Surfaces under Cathodic Polarization at High Temperatures, J. Physic. Chem. C, 117 (2013) 16087-16094.
[31] A.Z. Varzaneh, J. Towfighi, A.H.S. Kootenaei, A. Mohamadalizadeh, Effect of cerium and zirconium nanoparticles on the structure and catalytic performance of SAPO-34 in steam cracking of naphtha to light olefins, React. Kin., Mech. Catal., 115 (2015) 719-740.
[32] Y. Zheng, K. Li, H. Wang, D. Tian, Y. Wang, X. Zhu, Y. Wei, M. Zheng, Y. Luo, Designed oxygen carriers from macroporous LaFeO3 supported CeO2 for chemical-looping reforming of methane, Appl. Catal. B: Environ., 202 (2017) 51-63.
[33] S. Royer, H. Alamdari, D. Duprez, S. Kaliaguine, Oxygen storage capacity of La1− xA′xBO3 perovskites (with A′= Sr, Ce; B= Co, Mn)—relation with catalytic activity in the CH4 oxidation reaction, Appl. Catal. B: Environ., 58 (2005) 273-288.
[34] X. Yang, Q. Gao, Z. Zhao, Y. Guo, Y. Guo, L. Wang, Y. Wang, W. Zhan, Surface tuning of noble metal doped perovskite oxide by synergistic effect of thermal treatment and acid etching: A new path to high-performance catalysts for methane combustion, Appl. Catal. B: Environ., 239 (2018) 373-382.
[35] X. Tan, N. Han, H. Chen, L. Su, C. Zhang, Y. Li, Investigation of perovskite BaCe1-xMnxO3-δ for methane combustion, Ceram. Int., (2020).