材料科学
催化作用
阳极
化学工程
氧化物
极化(电化学)
电化学
吸附
钙钛矿(结构)
陶瓷
分解
燃料电池
氨
密度泛函理论
无机化学
功率密度
降级(电信)
纳米颗粒
合金
电流密度
固体氧化物燃料电池
氢燃料
图层(电子)
作者
Dongyeon Kim,Dong Jae Park,Incheol Jeong,Seeun Oh,Hyeonggeun Kim,Mincheol Lee,Sang Won Lee,Kangyong Lee,Daehan Chung,Ki‐Min Roh,Joongmyeon Bae,Tae Ho Shin,Kang Taek Lee
标识
DOI:10.1007/s40820-026-02194-9
摘要
Abstract Protonic ceramic fuel cells (PCFCs) operating on NH 3 present a promising carbon-free energy pathway, yet their performance is often constrained by limited catalytic activity and degradation of conventional Ni-based anodes. Here, we report a high-entropy perovskite catalyst, Sr 2 Fe 1 Mo 0.2 Mn 0.2 Cr 0.2 Cu 0.2 Ni 0.2 O 6- δ (SFMMCCN), employed as an anode catalyst layer in direct ammonia-fed PCFCs. Upon reduction, SFMMCCN undergoes in situ exsolution of Ni–Fe–Cu alloy nanoparticles within a stable oxide matrix. This architecture provides synergistic enhancement of NH 3 adsorption and decomposition through the combined effects of abundant surface acid sites and catalytically active alloy interfaces. As a result, the SFMMCCN cell achieves a record peak power density of 2.04 W cm⁻ 2 at 700 °C and demonstrates excellent operational stability for over 255 h at 600 °C under NH 3 fuel. Compared to a bare cell, it exhibits significantly reduced polarization resistance and effectively suppresses Ni coarsening. Density functional theory calculations reveal that the high-entropy oxide framework, together with the exsolved Ni–Fe–Cu alloy, lowers the energy barriers for NH 3 decomposition, thereby accelerating overall catalytic kinetics. These findings highlight entropy-controlled oxide–metal architectures as a powerful strategy to achieve both high performance and durability in NH 3 -fueled electrochemical systems, offering a viable pathway toward scalable and efficient hydrogen-based power generation.
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