Combustion synthesis of lanthanum oxide supported Cu, Ni, and CuNi nanoparticles for CO2 conversion reaction

被引:14
作者
Ebrahimi, Parisa [1 ]
Kumar, Anand [1 ]
Khraisheh, Majeda [1 ]
机构
[1] Qatar Univ, Dept Chem Engn, POB 2713, Doha, Qatar
关键词
CO2; conversion; Reverse water gas shift reaction; CO selectivity; Carbon deposition; GAS SHIFT REACTION; CARBON-DIOXIDE; CATALYTIC PERFORMANCE; METHANE DECOMPOSITION; NI-CEO2; CATALYSTS; ENHANCED ACTIVITY; IN-SITU; REDUCTION; LA2O3; HYDROGENATION;
D O I
10.1016/j.ijhydene.2022.10.116
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) process is considered a feasible method for lowering greenhouse gas emissions by utilizing CO2 and converting it to CO. Herein, we evaluated the catalytic conversion of CO2 through the RWGS reaction over transition metal nanoparticles supported on lanthanum. Catalysts of selected active metals (Cu, Ni, and CuNi) on lanthanum oxide support were investigated in a packed bed tubular reactor within a temperature range of 100-600 & DEG;C to assess their catalytic activity and selectivity towards CO. The results of the catalyst's activity and stability experiments showed maximum CO2 conversions of 57%, 68% and 74% for Cu-La2O3, Ni-La2O3, and CuNi-La2O3, respectively, at 600 & DEG;C and excellent stability over a 1440-min time on stream (TOS) with a carbon deposition rate of less than 3 wt%. However, among all investigated catalysts, only the 1 wt% Cu -La2O3 catalyst displayed a CO selectivity of 100% at all the studied temperatures, whereas the nickel-containing catalysts showed selectivity for methane along with carbon monoxide. Furthermore, the morphological properties of the support and catalysts, as well as the effect of the reaction conditions on the catalysts surface, were studied using a variety of techniques, including XRD, TEM, SEM-EDX and TPR. The results showed promising potential for the application of transition metal catalysts on lanthanum oxide support for RWGS that could be extended to other hydrogenation reactions. & COPY; 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:24580 / 24593
页数:14
相关论文
共 118 条
[71]   Monitoring Ni0 and coke evolution during the deactivation of a Ni/La2O3-αAl2O3 catalyst in ethanol steam reforming in a fluidized bed [J].
Montero, Carolina ;
Ochoa, Aitor ;
Castano, Pedro ;
Bilbao, Javier ;
Gayubo, Ana G. .
JOURNAL OF CATALYSIS, 2015, 331 :181-192
[72]   COMBUSTION SYNTHESIS OF ADVANCED MATERIALS .1. REACTION PARAMETERS [J].
MOORE, JJ ;
FENG, HJ .
PROGRESS IN MATERIALS SCIENCE, 1995, 39 (4-5) :243-273
[73]   From CO2 methanation to ambitious long-chain hydrocarbons: alternative fuels paving the path to sustainability [J].
Mota, Filipe Marques ;
Kim, Dong Ha .
CHEMICAL SOCIETY REVIEWS, 2019, 48 (01) :205-259
[74]   Effect of lanthanum on the properties of copper, cerium and zirconium catalysts for preferential oxidation of carbon monoxide [J].
Mouraa, Jadson Santos ;
Lima Fonsecaa, Juliana da Silva ;
Bion, Nicolas ;
Epron, Florence ;
de Freitas Silva, Tatiana ;
Maciel, Cristhiane Guimaraes ;
Assaf, Jose Mansur ;
Rangela, Maria do Carmo .
CATALYSIS TODAY, 2014, 228 :40-50
[75]   Synthesis, characterization, shape-preserved transformation, and optical properties of La(OH)3, La2O2CO3, and La2O3 nanorods [J].
Mu, Qiuying ;
Wang, Yude .
JOURNAL OF ALLOYS AND COMPOUNDS, 2011, 509 (02) :396-401
[76]   Novel method for synthesis of nano-materials: Combustion of active impregnated layers [J].
Mukasyan, Alexander S. ;
Dinka, Peter .
ADVANCED ENGINEERING MATERIALS, 2007, 9 (08) :653-657
[77]   Pellet size dependent steam reforming of polyethylene terephthalate waste for hydrogen production over Ni/La promoted Al2O3 catalyst [J].
Nabgan, Bahador ;
Abdullah, Tuan Amran Tuan ;
Tahir, Muhammad ;
Nabgan, Walid ;
Triwahyono, Sugeng ;
Jalil, Aishah Abdul ;
Gambo, Yahya ;
Ibrahim, Maryam ;
Moghadamian, Kama .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (34) :21571-21585
[78]  
Nasrazadani S., 2016, HDB MAT FAILURE ANAL, DOI [DOI 10.1016/B978-0-08-100117-2.00010-8, 10.1016/B978-0-08-100117-2.00010-8]
[79]  
Noh N.M., Catalytic Route for the Synthesis of Cyclic Organic Carbonates from Renewable Polyols
[80]  
Otto TN, 2012, CATALYST CHARACTERIZ