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Measuring oxygen surface exchange kinetics on mixed-conducting composites by electrical conductivity relaxation

机译:通过电导率松弛测量混合导电复合材料上的氧表面交换动力学

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The oxygen release kinetics of mixed-conducting Sr2Fe1.5Mo0.5O6-delta-Sm0.2Ce0.8O2-delta (SFM-SDC) dual-phase composites has been investigated, at 750 degrees C, as a function of the SDC phase volume fraction using electrical conductivity relaxation (ECR) under reducing atmospheres, extending our previous work on the oxygen incorporation kinetics of these composites under oxidizing conditions. Gas mixtures of H-2/H2O and CO/CO2 were used to control step changes in the oxygen partial pressure (pO(2)) in the range 10(-24) to 10(-20) atm. At the conditions of the experiments, oxygen re-equilibration is entirely controlled by the surface exchange kinetics. A model is developed which allows deconvolution of the effective time constant of the relaxation process in terms of the intrinsic contributions of the components to oxygen surface exchange and synergetic contributions caused by heterogeneous interfaces. The oxygen surface exchange kinetics under H-2/H2O atmosphere is found to be a weighted average of the intrinsic contributions of SFM and SDC phases. No evidence is found for an enhanced exchange rate at the SFM-SDC-gas triple phase boundaries (TPB). Synergetic contributions arise under CO/CO2 atmosphere, enhancing the rate of oxygen surface exchange up to a factor of 2.4. The obtained results are discussed in terms of the surface microstructure of the composites from image analysis. Overall, the results of this and our previous study confirm that the triple phase boundaries in SFM-SDC composites significantly accelerate the oxygen incorporation kinetics under oxidizing conditions, but only modestly, or even negligibly, influence the oxygen release kinetics under reducing conditions.
机译:已在750摄氏度下研究了混合导电Sr2Fe1.5Mo0.5O6-δ-Sm0.2Ce0.8O2-δ(SFM-SDC)双相复合材料的氧释放动力学,其为SDC相体积分数的函数在还原气氛下使用电导率弛豫(ECR),扩展了我们以前在氧化条件下这些复合材料的氧结合动力学方面的工作。使用H-2 / H2O和CO / CO2的气体混合物将氧气分压(pO(2))的阶跃变化控制在10(-24)至10(-20)atm的范围内。在实验条件下,氧的重新平衡完全由表面交换动力学控制。开发了一种模型,该模型可以根据组分对氧表面交换的内在作用和由异质界面引起的协同作用对松弛过程的有效时间常数进行反卷积。发现在H-2 / H2O气氛下的氧表面交换动力学是SFM和SDC相固有贡献的加权平均值。没有证据表明在SFM-SDC-气体三相边界(TPB)处汇率会提高。在CO / CO2气氛下产生协同作用,将氧气表面交换速率提高到2.4倍。根据图像分析中复合材料的表面微观结构讨论了获得的结果。总的来说,该结果和我们先前的研究证实,SFM-SDC复合材料中的三相边界在氧化条件下显着加速了氧的引入动力学,但在还原条件下仅适度甚至微不足道地影响了氧的释放动力学。

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