钙钛矿(结构)
氧气
兴奋剂
密度泛函理论
反应性(心理学)
化学链燃烧
燃烧
活化能
动能
化学
晶格能
分析化学(期刊)
材料科学
物理化学
计算化学
晶体结构
结晶学
有机化学
替代医学
病理
物理
医学
量子力学
光电子学
作者
Nini Yuan,Ziheng Han,Qingjie Guo,Jian Hao,Jingjing Ma,Hongcun Bai
摘要
Abstract Oxygen carriers (OCs) with typical perovskite structures have attracted attention for use in chemical looping combustion (CLC) owing to their unique tunable structures and excellent performance. Thus, a further improvement in the reactivity and a deep understanding of the kinetic behaviour in CLC are highly desirable for such perovskite OCs. In this study, a series of Sr‐doped perovskite‐structured CaFeO 3 OCs (denoted as Sr x Ca 1− x FeO 3 ) were synthesized. The CLC characteristics, kinetic behaviour, and doping mechanism were systematically investigated via experiments and density functional theory (DFT) calculations. The activation energies of Sr x Ca 1− x FeO 3 OCs with various Sr contents were found to be in the range of 36.6–40.1 kJ/mol and lower than that of CaFeO 3 (62.7 kJ/mol), indicating that the Sr doping enhanced the reactivity of CaFeO 3 . Among the OCs, Sr 0.4 Ca 0.6 FeO 3 , which had the lowest activation energy and the fastest release of lattice oxygen, was regarded as the optimum OC. DFT calculations indicated that the reaction energy barrier of Sr x Ca 1− x FeO 3 (0.73–1.06 eV) was lower than that of CaFeO 3 (2.18 eV). This suggests that Sr doping and the regulation of the reaction pathways are essential drivers for enhancing the reactivity of Sr x Ca 1− x FeO 3 , which affects the release of lattice oxygen and the morphological properties of OC particles.
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