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Effect of strontium and zirconium doped barium cerate on the performance of proton ceramic electrolyser cell for syngas production from carbon dioxide and steam

机译:锶锆掺杂铈钡对质子陶瓷电解池生产二氧化碳和水蒸气合成气性能的影响

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Syngas has been produced from carbon dioxide (CO2) and steam using a proton ceramic electrolyser cell. Proton-conducting electrolytes which exhibit high conductivity can suffer from low chemical stability. In this study, to optimize both proton conductivity and chemical stability, barium cerate and doped barium cerate are synthesized using solid state reaction method: BaCeO3 (BC), Ba0.6Sr0.4CeO3-alpha (BSC), Ba0.6Sr0.4Ce0.9Y0.1O3-alpha (BSCY), and BaCe0.6Zr0.4O3-alpha (BCZ). The BC, BSC, and BSCY are calcined at 1100 degrees C for 2 h and BCZ is calcined at 1300 degrees C for 12 h, respectively. All samples exhibit 100% perovskite and crystallite sizes equal 37.05, 28.46, 23.65 and 17.46 nm for BC, BSC, BSCY and BCZ, respectively. Proton conductivity during steam electrolysis as well as catalytic activity toward the reverse water gas shift reaction (RWGS) is tested between 400 and 800 degrees C. The conductivity increases with temperature and the values of activation energy of conduction are 64.69, 100.80, 103.78 and 108.12 kJ mol(-1)( )for BSCY, BC, BSC, and BCZ, respectively. It is found that although BCZ exhibits relatively low conductivity, the material provides the highest CO yield at 550-800 degrees C, followed by BSCY, BSC, and BC, correlating to the crystallite size and BET surface area of the samples. Catalytic activity toward RWGS of composited Cu and electrolytes is also measured. Additional Cu (60 wt%) significantly increases catalytic activity. The CO yield increases from 3.01% (BCZ) to 43.60% (Cu/BCZ) at 600 degrees C and CO can be produced at temperature below 400 degrees C. There is no impurity phase detected in BCZ sample after exposure to CO2-containing gas mixture (600 degrees C for 5 h) while CeO2 phase is detected in BSC and BSCY and both CeO2 and BaO are observed in BC sample. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:使用质子陶瓷电解池由二氧化碳(CO2)和蒸汽产生合成气。表现出高电导率的质子传导电解质可能具有低化学稳定性。在这项研究中,为了优化质子传导性和化学稳定性,使用固态反应方法合成了铈钡和掺杂铈钡:BaCeO3(BC),Ba0.6Sr0.4CeO3-alpha(BSC),Ba0.6Sr0.4Ce0.9Y0 0.1O3-alpha(BSCY)和BaCe0.6Zr0.4O3-alpha(BCZ)。分别在1100摄氏度下煅烧BC,BSC和BSCY 2小时,在1300摄氏度下煅烧BCZ 12小时。所有样品的BC,BSC,BSCY和BCZ分别具有100%钙钛矿和微晶尺寸,分别等于37.05、28.46、23.65和17.46 nm。在400到800摄氏度之间测试了蒸汽电解过程中的质子电导率以及对逆水煤气变换反应(RWGS)的催化活性。电导率随温度升高而增加,并且传导活化能的值分别为64.69、100.80、103.78和108.12 BSCY,BC,BSC和BCZ分别为kJ mol(-1)()。发现虽然BCZ表现出相对较低的电导率,但该材料在550-800摄氏度时提供最高的CO产量,其次是BSCY,BSC和BC,与样品的微晶尺寸和BET表面积相关。还测量了复合铜和电解质对RWGS的催化活性。额外的Cu(60 wt%)大大提高了催化活性。在600摄氏度时,CO产率从3.01%(BCZ)增加到43.60%(Cu / BCZ),并且可以在低于400摄氏度的温度下产生CO。暴露于含CO2的气体后,BCZ样品中未检测到杂质相混合物(600摄氏度,持续5小时),同时在BSC和BSCY中检测到CeO2相,在BC样品中同时观察到CeO2和BaO。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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