Thermochemical Properties of High Entropy Oxides Used as Redox-Active Materials in Two-Step Solar Fuel Production Cycles

被引:12
|
作者
Le Gal, Alex [1 ]
Valles, Marielle [2 ]
Julbe, Anne [2 ]
Abanades, Stephane [1 ]
机构
[1] Proc Mat & Solar Energy Lab PROMES CNRS, 7 Rue Four Solaire, F-66120 Odeillo Font Romeu, France
[2] Univ Montpellier, Inst Europeen Membranes IEM, ENSCM, CNRS, Pl Eugene Bataillon, F-34095 Montpellier, France
关键词
hydrogen; water splitting; CO2; conversion; thermochemical cycles; concentrated solar energy; high entropy oxides; redox materials; solar fuels; LANTHANUM MANGANITE PEROVSKITES; HYDROGEN-PRODUCTION; RARE-EARTH; THERMAL REDUCTION; H-2; PRODUCTION; WATER; CO2; TEMPERATURE; CERIA; H2O;
D O I
10.3390/catal12101116
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 main challenges and obstacles to the development of hydrogen/carbon monoxide production from the splitting of water/carbon dioxide through two-step solar thermochemical cycles are strongly related to material concerns. Ineed, ceria is the main benchmark redox material used in such processes because it provides very good oxidation reaction kinetics, reactions reversibility and thermal cycling stability. This is at the expense of a low reduction yield (non-stoichiometry delta in CeO2-delta) at relatively high temperatures (>= 1400 degrees C), which requires operation at low oxygen partial pressures during the reduction step. Hence, the specific fuel output per mass of redox material, i.e., the amount of H-2/CO produced per cycle, remains low, thereby limiting the overall solar-to-fuel conversion efficiency. Perovskites offer larger amounts of fuel produced per cycle but the reaction kinetics are slow. This study addresses the thermochemical investigation of a new class of metal oxides, namely high entropy oxides (HEOs), with the aim of improving the specific amount of fuel generated per cycle with good kinetic rates. Different formulations of high entropy oxides were investigated and compared using thermogravimetric analysis to evaluate their redox activity and ability to split CO2 during thermochemical cycles. Among the different formulations tested, five HEOs yielded CO with a maximum specific fuel output of 154 mu mol/g per cycle. These materials' performances exceeded the production yields of ceria under similar conditions but are still far from the production yields reached with lanthanum-manganese perovskites. This new class of materials, however, opens a wide path for research into new formulations of redox-active catalysts comparing favorably with the ceria redox performance for solar thermochemical synthetic fuel production.
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页数:21
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