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首页> 外文期刊>ACS applied materials & interfaces >Novel Approach for Developing Dual-Phase Ceramic Membranes for Oxygen Separation through Beneficial Phase Reaction
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Novel Approach for Developing Dual-Phase Ceramic Membranes for Oxygen Separation through Beneficial Phase Reaction

机译:通过有利相反应开发用于氧气分离的双相陶瓷膜的新方法

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摘要

A novel method based on beneficial phase reaction for developing composite membranes with high oxygen permeation flux and favorable stability was proposed in this work. Various Ce0.8Sm0.2O2-delta (SDC) + SrCO3+Co3O4 powders with different SDC contents were successfully fabricated into membranes through high temperature phase reaction. The X-ray diffraction (XRD) measurements suggest that the solid-state reaction between the SDC, SrCO3 and Co3O4 oxides occurred at the temperature for membrane sintering, leading to the formation of a highly conductive tetragonal perovskite phase SmxSr1-xCoO3-delta. The morphology and elemental distribution of the dual-phase membranes were characterized using back scattered scanning electron microscopy and energy dispersive X-ray spectroscopy (BSEM-EDX). The oxygen bulk diffusivity and surface exchange properties of the materials were investigated via the electrical conductivity relaxation technique, which supported the formation of conductive phases. The SDC+20 wt % SrCO3+10.89 wt % Co3O4 membrane exhibited the highest permeation flux among the others, reaching 0.93 mL cm(-2) min(-1) [STP = standard temperature and pressure] under an air/helium gradient at 900 degrees C for a membrane with a thickness of 0.5 mm. In addition, the oxygen permeation flux remained stable during the long-time test. The results demonstrate the beneficial phase reaction as a practical method for the development of high-performance dual-phase ceramic membranes.
机译:提出了一种基于有益相反应的新方法,以开发具有高氧通量和良好稳定性的复合膜。通过高温相反应成功地将具有不同SDC含量的各种Ce0.8Sm0.2O2-δ(SDC)+ SrCO3 + Co3O4粉末制成膜。 X射线衍射(XRD)测量表明,SDC,SrCO3和Co3O4氧化物之间的固态反应发生在膜烧结温度下,从而导致形成高导电性的四方钙钛矿相SmxSr1-xCoO3-δ。使用反向散射扫描电子显微镜和能量色散X射线光谱(BSEM-EDX)表征了双相膜的形态和元素分布。通过电导率弛豫技术研究了材料的氧体积扩散率和表面交换性能,这支持了导电相的形成。在其他条件下,SDC + 20 wt%SrCO3 + 10.89 wt%Co3O4膜表现出最高的渗透通量,达到0.93 mL cm(-2)min(-1)[STP =标准温度和压力]。厚度为0.5毫米的膜在900摄氏度下使用。另外,在长时间测试中,氧气渗透通量保持稳定。结果表明有益的相反应是开发高性能双相陶瓷膜的一种实用方法。

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