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A micro-nano porous oxide hybrid for efficient oxygen reduction in reduced-temperature solid oxide fuel cells

机译:一种微纳米多孔氧化物杂化物可有效降低低温固体氧化物燃料电池中的氧气

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摘要

Tremendous efforts to develop high-efficiency reduced-temperature (≤ 600°C) solid oxide fuel cells are motivated by their potentials for reduced materials cost, less engineering challenge, and better performance durability. A key obstacle to such fuel cells arises from sluggish oxygen reduction reaction kinetics on the cathodes. Here we reported that an oxide hybrid, featuring a nanoporous Sm0.5Sr0.5CoO3−δ (SSC) catalyst coating bonded onto the internal surface of a high-porosity La0.9Sr0.1Ga0.8Mg0.2O3−δ (LSGM) backbone, exhibited superior catalytic activity for oxygen reduction reactions and thereby yielded low interfacial resistances in air, e.g., 0.021 Ω cm2 at 650°C and 0.043 Ω cm2 at 600°C. We further demonstrated that such a micro-nano porous hybrid, adopted as the cathode in a thin LSGM electrolyte fuel cell, produced impressive power densities of 2.02 W cm−2 at 650°C and 1.46 W cm−2 at 600°C when operated on humidified hydrogen fuel and air oxidant.
机译:开发高效率的低温(≤600°C)固体氧化物燃料电池的巨大努力是受到其降低材料成本,减少工程挑战以及提高性能耐久性的潜力的推动。这种燃料电池的主要障碍来自阴极上缓慢的氧还原反应动力学。在这里,我们报道了一种氧化物杂化物,其特征在于纳米多孔Sm0.5Sr0.5CoO3-δ(SSC)催化剂涂层粘结在高孔隙度La0.9Sr0.1Ga0.8Mg0.2O3-δ(LSGM)骨架内表面上对氧气还原反应具有优异的催化活性,因此在空气中产生较低的界面电阻,例如在650°C下为0.021Ωcm 2 ,在600°C下为0.043Ωcm 2 。我们进一步证明,在薄的LSGM电解质燃料电池中用作阴极的这种微纳多孔混合动力电池在650°C和1.46 W cm <时产生了令人印象深刻的功率密度,为2.02 W cm −2 。在加湿的氢燃料和空气氧化剂上运行时,在600°C时sup> −2

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