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Oxygen permeation through Ca-contained dual-phase membranes for oxyfuel CO2 capture

机译:Oxygen permeation through Ca-contained dual-phase membranes for oxyfuel CO2 capture

摘要

The integration of mixed ionic and electronic conducting (MIEC) membranes into the oxyfuel process can significantly reduce the energy penalty introduced by the CO2 capture. For this integration, a CO2 tolerant oxygen permeable membrane is required. Here, dual-phase membranes were prepared via a one-pot method containing a samarium doped CeO2 as the oxygen ionic conducting phase for ionic transport and a calcium doped perovskite SmCoO3 as the mixed conducting phase for both ionic and electronic transport. Both phases of the prepared membranes are spontaneously formed from the mixed precursors via a one-pot method, which indicates that both phases are chemical compatible with each other. The effects of Ca doping amount in the perovskite oxide on total conductivity, oxygen permeation flux, permeation stability as well as structural stability under CO2 atmosphere were investigated. All the experimental results indicate that the Ca-contained dual-phase membranes have high stability and permeation flux under the sweep of CO2. (C) 2013 Elsevier B.V. All rights reserved.
机译:将混合的离子和电子导电(MIEC)膜集成到含氧燃料工艺中可以显着减少由CO2捕集引入的能量损失。为了进行这种整合,需要耐二氧化碳的透氧膜。在此,通过一锅法制备双相膜,该一锅法包含do掺杂的CeO2作为氧离子导电相用于离子迁移,钙掺杂的钙钛矿SmCoO3作为混合导电相用于离子和电子迁移。制备的膜的两相是通过一锅法由混合前体自发形成的,这表明两相是彼此化学相容的。研究了钙钛矿型氧化物中Ca的掺杂量对CO2气氛下总电导率,氧气渗透通量,渗透稳定性以及结构稳定性的影响。所有实验结果表明,含钙双相膜在CO2吹扫下具有较高的稳定性和渗透通量。 (C)2013 Elsevier B.V.保留所有权利。

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