材料科学
钙钛矿(结构)
铋
氧化物
钴
耐久性
铋铁氧体
电极
电催化剂
钴铁氧体
无机化学
克拉克电极
氧化钴
铁氧体(磁铁)
化学工程
冶金
复合材料
电化学
光电子学
电介质
多铁性
物理化学
电解质
工程类
铁电性
化学
作者
Ning Sun,Guangjun Zhang,Jiancheng Wang,Guozhu Zheng,Hui Xu,Yating Zhang,Lang Xu,Fangjun Jin,Ting Chen,Shaorong Wang
标识
DOI:10.1002/adfm.202509535
摘要
Abstract High electrocatalytic activity and robust thermal/chemical stability in oxygen electrode materials are critical properties for achieving high‐performance and long‐lifespan reversible solid oxide cells (RSOCs). Herein, a series of rare‐earth element‐substituted perovskite compounds Bi 0.8− x Ln x Ca 0.2 FeO 3− δ (Ln = La, Pr, and Nd) are explored as potential oxygen electrode materials. Particular attention is devoted to investigating their crystalline structure, oxygen exchange capabilities, electrocatalytic activity, and chemical durability. The density functional theory results indicate that praseodymium doping induces an increase in oxygen vacancies and reduces the adsorption energy of CO 2 , which helps to enhance electrochemical performance and durability. Electrochemical investigations reveal that the cell employing Bi 0.7 Pr 0.1 Ca 0.2 FeO 3− δ (BPCF) as oxygen electrode material achieves a peak power density of 1.278 W cm −2 and an electrolysis current density of 1.19 A cm −2 (1.3 V) at 800°C, outperforming most previously reported oxygen electrode materials. Moreover, the praseodymium‐doped BPCF oxygen electrode exhibits significantly enhanced resistance to CO 2 . This work presents an efficient approach for designing highly active and stable oxygen electrodes for RSOCs.
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