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In Situ Optical Investigations of Contaminants in Operating Solid Oxide Fuel Cells

机译:原位光学研究实际氧化物燃料电池中的污染物

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Solid oxide fuel cells (SOFCs) can generate electricity efficiently and with broad fuel flexibility, but practical applications require them to be more durable and resistant to degradation when subjected to impurities. In order to better understand poisoning mechanisms and guide strategies for developing more durable materials and devices, we have used operando optical methods combined with electrochemical measurements to investigate the effects of sulfur (170 ppm H_2S) on SOFC Ni/YSZ anodes operating on methane at high temperature (700°C). There is clear evidence of reduced anode catalytic activity based on near infrared thermal imaging which shows not only that the cooling associated with endothermic methane cracking is reduced but also that an elevated temperature is observed that is temporally correlated with drastic electrochemical changes indicative of substantial anode degradation. Mid infrared emission measurements indicate less fuel consumption and fewer oxidation products in agreement with the trend of suppressed anode activity. The effects are compared to similar studies of chlorine contamination where reversibility and degradation mechanisms have been mapped out more extensively to show they depend sensitively on temperature and type of fuel; the effects are more pronounced and seem to be promoted in electrochemically active regions for sulfur.
机译:固体氧化物燃料电池(SOFC)能够高效且具有广泛的燃料灵活性发电,但实际应用要求它们在经受杂质更加耐用和耐降解。为了更好地理解用于开发更耐用的材料和设备中毒机制和引导策略,我们已经使用operando光学方法与电化学测量组合,以调查硫(170 ppm的硫化氢)的上在高甲烷操作SOFC的Ni / YSZ阳极的影响温度(700℃)。有基于近红外热成像降低阳极的催化活性的明显的证据,其示出了不仅使冷却用吸热甲烷破裂性降低相关联,而且该升高的温度下观察到,在时间上与剧烈的电化学变化相关指示实质阳极劣化的。中红外线发射测量表明与抑制阳极活性的趋势协议更少的燃料消耗和较少的氧化产物。的效果相比,在可逆性和降解机制已经被映射了更广泛地,以显示它们敏感地依赖于温度和燃料的类型氯污染的类似研究;效果更加显着,并似乎为硫的电化学活性区域被提升。

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