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首页> 外文期刊>Energy & environmental science >Protonic ceramic electrochemical cells for hydrogen production and electricity generation: exceptional reversibility, stability, and demonstrated faradaic efficiency
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Protonic ceramic electrochemical cells for hydrogen production and electricity generation: exceptional reversibility, stability, and demonstrated faradaic efficiency

机译:用于氢气生产和发电的质子陶瓷电化学电池:卓越的可逆性,稳定性和表现出野蛮效率

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摘要

We demonstrate exceptional performance for steam electrolysis at intermediate temperatures (500-650 degrees C) using protonic ceramic electrolyte cells comprised of the proton-permeable, high-activity mixed conductor PrBa0.5Sr0.5Co1.5Fe0.5O5+ (PBSCF) as the air electrode, the highly proton-conductive and chemically stable perovskite oxide BaZr0.4Ce0.4Y0.1Yb0.1O3 (BZCYYb4411) as the electrolyte, and a composite of Ni-BZCYYb4411 as the fuel electrode. Cells constructed from this material set have been shown previously to function efficiently in fuel cell mode. We demonstrate here reversible operation, enabling hydrogen production when excess electricity is available and immediate electricity generation from stored hydrogen when power demand is high. The cells are stable under cyclic operation and also under prolonged continuous operation in electrolysis mode, undergoing minimal loss in electrochemical characteristics after 500 h at 550 degrees C. Microstructurally optimized cells yield a remarkable current density of -1.80 A cm(-2) at 600 degrees C and an operating voltage of 1.3 V, of which, based on an electrochemically deduced faradaic efficiency of 76%, -1.37 A cm(-2) contributes to useful hydrogen.
机译:我们向中间温度(500-650℃)蒸汽电解的卓越性能使用质子陶瓷电解质细胞,包括质子透气,高活性混合导体PRBA0.5SR0.5CO1.5FE0.505 +(PBSCF)作为空气电极,高质子导电和化学稳定的钙钛矿氧化物Bazr0.4CE0.4Y0.1YB0.1O3(BZCYYB4411)作为电解质,以及作为燃料电极的Ni-BzcyyB4411的复合物。从该材料组构造的细胞已经先前示出为在燃料电池模式中有效地起作用。我们在此证明可逆操作,当电源需求高时,当过量的电力可用时,能够在储存的氢气时产生氢气产生。细胞在循环操作下稳定,并且在电解模式下延长连续操作,在550℃下500小时后经历了电化学特性的最小损失。微结构优化的电池在600处产生显着的电流密度-1.80a cm(-2)基于电化学推导的射线效率为76%,-1.37Acm(-2)的较小氢效率为1.3V的工作电压有助于有用的氢气。

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  • 来源
    《Energy & environmental science 》 |2019年第1期| 206-215| 共10页
  • 作者单位

    Northwestern Univ Mat Sci & Engn Evanston IL 60208 USA|Kumoh Natl Inst Technol Dept Mech Engn Gumi South Korea;

    Northwestern Univ Mat Sci & Engn Evanston IL 60208 USA;

    Northwestern Univ Mat Sci & Engn Evanston IL 60208 USA;

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