首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Activity of layered swedenborgite structured Y0.8Er0.2BaCo3.2Ga0.8O7+delta for oxygen electrode reactions in at intermediate temperature reversible ceramic cells
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Activity of layered swedenborgite structured Y0.8Er0.2BaCo3.2Ga0.8O7+delta for oxygen electrode reactions in at intermediate temperature reversible ceramic cells

机译:分层瑞典堡的活性结构y0.8er0.2baco3.2ga0.807 +δ在中间温度可逆陶瓷细胞中的氧电极反应

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摘要

To improve the thermal stability and intrinsically sluggish kinetics of oxygen electrode reactions in solid oxide fuel cells (SOFCs) and reversible protonic ceramic cells (RPCCs) at intermediate temperatures, a novel layered swedenborgite structure Y0.8Er0.2BaCo3.2Ga0.8O7+delta (YEBCG) catalyst is introduced as an alternative to perovskite materials that contain cobalt. The thermal expansion coefficient of YEBCG is 8.41 x 10(-6) K-1, which is relatively well matched to the state-of-the-art proton-conducting and oxygen-ion-conducting electrolytes. The chemical bulk diffusion and surface exchange coefficients of YEBCG are 7.12 x 10(-4) and 8.01 x 10(-3) cm(2) s(-1), respectively, at 650 degrees C, which leads to much faster action than with state-of-art perovskite structured materials at intermediate temperatures. The maximum power densities of YEBCG cells are notably high, reaching 0.77 and 0.83 W cm(-2) at 650 degrees C in SOFC and protonic ceramic fuel cell modes, respectively. Under electrolysis, the YEBCG cells achieve outstanding current densities of -0.61 and -4.42 A cm(-2) at 500 and 700 degrees C, respectively, under an applied voltage of 1.4 V. Furthermore, the RPCC with YEBCG present no degradation over an entire 1000 h in fuel cell and electrolysis cell modes. These results demonstrate the excellent properties, including good durability, of the YEBCG air electrode when used in high performance SOFCs and RPCCs.
机译:为了改善中温下固体氧化物燃料电池(SOFC)和可逆质子陶瓷电池(RPCC)中氧电极反应的热稳定性和固有的迟滞动力学,提出了一种新的层状swedenborgite结构Y0。8Er0。2BaCo3。2Ga0。引入8O7+δ(YEBCG)催化剂作为含钴钙钛矿材料的替代品。YEBCG的热膨胀系数为8.41 x 10(-6)K-1,与最先进的质子导电和氧离子导电电解质相匹配。在650摄氏度时,YEBCG的化学体扩散系数和表面交换系数分别为7.12 x 10(-4)和8.01 x 10(-3)cm(2)s(-1),这导致在中温下的作用比最先进的钙钛矿结构材料快得多。YEBCG电池的最大功率密度非常高,在SOFC和质子陶瓷燃料电池模式下,在650℃时分别达到0.77和0.83 W cm(-2)。在电解条件下,在1.4 V的外加电压下,YEBCG电池在500℃和700℃时分别达到-0.61和-4.42 A cm(-2)的显著电流密度。此外,在燃料电池和电解电池模式下,带有YEBCG的RPCC在整个1000 h内不会出现降解。这些结果表明,YEBCG空气电极用于高性能SOFC和RPCC时具有优异的性能,包括良好的耐久性。

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