Fuel production capacity and DFT analysis of cation modified perovskites for enhanced thermochemical CO2 dissociation

被引:0
|
作者
Cong, Jian [1 ,2 ,3 ]
Beche, Eric [1 ]
Abanades, Stephane [1 ]
机构
[1] CNRS, Proc Mat & Solar Energy Lab PROMES, 7 Rue 4 Solaire, F-66120 Odeillo Font Romeu, France
[2] Chinese Acad Sci, Inst Elect Engn, Beijing 100190, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
来源
RSC SUSTAINABILITY | 2025年 / 3卷 / 03期
关键词
LANTHANUM MANGANITE PEROVSKITES; REDOX CYCLES; WATER; CERIA; CONVERSION; OXIDES; H2O; PERFORMANCE; STABILITY; PHASE;
D O I
10.1039/d4su00698d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Solar thermochemical redox splitting of CO2 using perovskite oxygen carriers in two-step cycles is a promising method for sustainable fuel production. In this study, a series of 23 potential perovskite candidates for CO production are designed, synthesized, and tested under the same experimental conditions. The material stability and the lattice structure are validated using Goldschmidt's tolerance factor and powder X-ray diffraction. For the reduction step, the high proportion of divalent cations (Sr2+/Ba2+/Ca2+) in the A site promotes oxygen transfer, and the maximum oxygen yield reaches 386 mu mol g-1 (delta = 0.164) for Gd0.6Ca0.4MnO3. DFT calculation results indicate that the multi-cationic doping in La0.5Sr0.2Ba0.15Ca0.15MnO3 shows a smaller energy barrier for oxygen transfer compared with the single A-site doping in La0.5Sr0.5MnO3, with an oxygen vacancy formation energy of 2.91 eV per (O atom), and it offers the most favorable CO yields of 225 and 227 mu mol g-1 in two consecutive cycles. The designed La0.25Gd0.25Sr0.25Ca0.25MnO3 further decreases the oxygen vacancy formation energy to 2.57 eV per (O atom). Based on the reaction rate analysis, the presence of B-site doping cations, such as in La0.6Sr0.4Mn0.75Zr0.25O3 and La0.5Sr0.5Mn0.8Ce0.2O3, increases the maximum oxidation rate, and the A-site multi doping of perovskites allows maintaining high CO production rates during the oxidation process. This work leverages tunable perovskite redox properties for enhanced CO production performance through DFT and thermochemical performance analysis, providing feasible guidance to promote CO2 splitting by an active cation doping strategy.
引用
收藏
页码:1550 / 1563
页数:14
相关论文
共 50 条
  • [31] Policy Analysis of CO2 Capture and Sequestration with Anaerobic Digestion for Transportation Fuel Production
    Leonhardt, Branden E.
    Tyson, Ryan J.
    Taw, Eric
    Went, Marjorie S.
    Sanchez, Daniel L.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2023, 57 (31) : 11401 - 11409
  • [32] United Conversion Process Coupling CO2 Mineralization with Thermochemical Hydrogen Production
    Xu, Chenyu
    Cai, Jiahui
    Wang, Zhihua
    Ni, Mingjiang
    Cen, Kefa
    Zhang, Yanwei
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2019, 53 (20) : 12091 - 12100
  • [33] Production of biodiesel from macroalgae by supercritical CO2 extraction and thermochemical liquefaction
    Aresta, Michele
    Dibenedetto, Angela
    Carone, Maria
    Colonna, Teresa
    Fragale, Carlo
    ENVIRONMENTAL CHEMISTRY LETTERS, 2005, 3 (03) : 136 - 139
  • [35] Insights into photocatalytic CO2 reduction reaction pathway: Catalytic modification for enhanced solar fuel production
    Arora, Isha
    Garg, Seema
    Sapi, Andras
    Ingole, Pravin Popinand
    Chandra, Amrish
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2024, 137 : 1 - 28
  • [36] Molten Carbonate Fuel Cells retrofits for CO2 capture and enhanced energy production in the steel industry
    Mastropasqua, Luca
    Pierangelo, Lorenzo
    Spinelli, Maurizio
    Romano, Matteo C.
    Campanari, Stefano
    Consonni, Stefano
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2019, 88 : 195 - 208
  • [37] CO2 enhanced coalbed methane production in the Netherlands
    Hamelinck, CN
    Faaij, APC
    Turkenburg, WC
    van Bergen, F
    Pagnier, HJM
    Barzandji, OHM
    Wolf, KHAA
    Ruijg, GJ
    ENERGY, 2002, 27 (07) : 647 - 674
  • [38] Calcium enhanced hydrogen production with CO2 capture
    Harrison, Douglas P.
    GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01): : 675 - 681
  • [39] Enhanced Process for Methanol Production by CO2 Hydrogenation
    Kiss, Anton. A.
    Pragt, J. J.
    Vos, H. J.
    Bargeman, G.
    de Groot, M. T.
    26TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING (ESCAPE), PT A, 2016, 38A : 985 - 990
  • [40] Analysis of Experimental Data on CO and N2O Interaction with CO2 Production Based on the Results of DFT Calculations
    A. A. Krupnov
    M. Yu. Pogosbekian
    Kinetics and Catalysis, 2019, 60 : 164 - 174