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首页> 外文期刊>International journal of hydrogen energy >Oxygen Reduction Mechanism At Ba_(0.5)sr_(0.5)co_(0.8)fe_(0.2)o_(3-δ) Cathode For Solid Oxide Fuel Cell
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Oxygen Reduction Mechanism At Ba_(0.5)sr_(0.5)co_(0.8)fe_(0.2)o_(3-δ) Cathode For Solid Oxide Fuel Cell

机译:固体氧化物燃料电池Ba_(0.5)sr_(0.5)co_(0.8)fe_(0.2)o_(3-δ)阴极的氧还原机理

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摘要

Perovskite structure Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ) (BSCF) and La_(0.9)Sr_(0.1)Ga_(0.8)Mg_(0.2)O_(3-δ) powders have been successfully synthesized by glycine-nitrate combustion process. A porous and crack-free BSCF cathode is obtained by spraying the slurry of BSCF powders and terpineol onto LSGM pellet. The oxygen reduction reaction mechanism has been investigated by AC impedance spectroscopy and cyclic voltammetry method. AC impedance spectroscopy analysis shows that there are two different processes in the cathode reaction which are related to oxygen dissociation/adsorption and bulk oxygen diffusion. And the molecular oxygen is involved in the rate-determining step. The polarization resistance decreases with an increase of temperature and the oxygen partial pressure. With an increase of the applied DC bias, the logarithm of the polarization resistance decreases linearly due to additional oxygen vacancies and the lowered chemical potential of oxygen at the BSCF/LSGM interface by the applied voltage. The exchange current density reaches to 182 mA cm~(-2) at 700 ℃, suggesting that the ORR kinetics at the BSCF/LSGM interface is high due to the excellent mixed ionic and electronic conductivity of BSCF.
机译:钙钛矿结构Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ)(BSCF)和La_(0.9)Sr_(0.1)Ga_(0.8)Mg_(0.2)O_(3-δ)甘氨酸硝酸盐燃烧过程已成功合成了粉末。通过将BSCF粉和松油醇的浆液喷涂到LSGM颗粒上,可以得到多孔且无裂纹的BSCF阴极。通过交流阻抗谱和循环伏安法研究了氧还原反应的机理。交流阻抗谱分析表明,阴极反应中存在两种不同的过程,分别与氧的离解/吸附和大量的氧扩散有关。分子氧参与速率确定步骤。极化电阻随着温度和氧分压的升高而降低。随着施加的直流偏压的增加,极化电阻的对数线性增加,这是由于额外的氧空位和施加的电压降低了BSCF / LSGM界面处的氧的化学势所致。 700℃时的交换电流密度达到182 mA cm〜(-2),这表明BSCF / LSGM界面的ORR动力学很高,这是因为BSCF具有优异的离子和电子混合导电性。

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