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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Infiltrated mesoporous oxygen electrodes for high temperature co-electrolysis of H2O and CO2 in solid oxide electrolysis cells
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Infiltrated mesoporous oxygen electrodes for high temperature co-electrolysis of H2O and CO2 in solid oxide electrolysis cells

机译:用于高温氧化物氧气的渗透介孔氧气电极在固体氧化物电解细胞中的H2O和CO 2的高温协同电解

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摘要

In the last few years, high temperature solid oxide electrolysis cells (SOECs) have emerged as a promising solution for energy conversion and storage. However, state-of-the-art systems suffer from technological limitations, which prevent their widespread use and market penetration. Particularly, the electrode-electrolyte interface represents a critical element due to the high oxygen potential located in this area, which in turn determines interface delamination. In this context, the use of mesoporous materials, whose architecture is characterized by concatenated nanometric-size pores and high specific surface area, represents a powerful strategy toward the achievement of long-term stability of the electrode. Such structures have been recently proposed as ionically conducting electrode scaffolds for solid oxide fuel cells (SOFCs), exhibiting good performances and low degradation rates. In particular, it has been shown that a highly increased triple phase boundary (TPB)-active points distribution along the electrode may be achieved upon infiltration with a catalytically active material. In this study, infiltrated mesoporous cerium was used as a functional oxygen electrode layer in a fuel electrode supported SOEC system. The results indicate that an enhancement in both long-term stability and electrolysis cell performance are achieved. This is attributed to the decrease in high current density paths and areas of high oxygen potential and to the superior thermal stability of such a nanostructured composite, which allows better current distribution. First, the morphological characterization of the as-synthesized mesoporous Ce0.8Gd0.2O1.9 (CGO), which was carried out by TEM microscopy and low-angle X-ray diffraction (LA-XRD), is presented. A structural and functional investigation of the fuel electrode supported cells, in which the oxygen electrode is composed of catalytically active La0.6Sr0.4Co0.2Fe0.8O3 (LSCF) infiltrating a CGO scaffold, was studied by means of XRD, scanning electron microscopy and spectroscopy, and electrochemical measurements. Characterization under co-electrolysis mode (45% H2O, 45% CO2 and 10% H-2) shows an injected current density higher than 1.2 A cm(-2) at 1.4 V at 750 degrees C. Electrochemical impedance spectroscopy was carried out at regular time intervals during galvanostatic (0.5 and 0.75 A cm(-2)) long-term operation for 1400 h, exhibiting a decrease in polarization resistance and only slight increase in serial resistance during operation. Total degradation rates lower than 2% kh(-1) at 0.5 A cm(-2) and 1% kh(-1) at 0.75 A cm(-2) were obtained. Finally, a mechanism for cell degradation based on evolution of the fuel electrode is proposed.
机译:在过去的几年中,高温固体氧化物电解细胞(SOECS)作为能量转化和储存的有希望的解决方案。然而,最先进的系统遭受技术限制,防止他们广泛使用和市场渗透。特别地,电极 - 电解质界面由于位于该区域中的高氧电位而表示临界元件,其又确定界面分层。在这种情况下,使用介孔材料的使用,其架构的特征在于串联型纳米尺寸孔和高比表面积,代表了实现电极长期稳定性的强大策略。最近已经提出了这种结构作为固用于固用于固体氧化物燃料电池(SOFC)的电极支架,表现出良好的性能和低降解速率。特别地,已经表明,在用催化活性材料渗透时可以实现沿电极的高度增加的三相边界(TPB) - 活性点分布。在该研究中,在燃料电极支撑的SOEC系统中用作渗透的介孔铈作为官能氧电极层。结果表明,实现了长期稳定性和电解细胞性能的增强。这归因于高电流密度路径和高氧电位区域的降低以及这种纳米结构复合材料的优异热稳定性,这允许更好的电流分布。首先,提出了通过TEM显微镜和低角度X射线衍射(La-XRD)进行的综合介孔Ce0.8GD0.2O1.9(CGO)的形态学表征。通过XRD,扫描电子显微镜和扫描电子显微镜和透射氧电极由催化活性LA0.6SR0.4CO0.2FE0.8O3(LSCF)组成的燃料电极支撑细胞的结构和功能研究。光谱学和电化学测量。在共电解模式下表征(45%H 2 O,45%CO 2和10%H-2)表示,在750℃下,在1.4V下的注入电流密度高于1.2Acm(-2)。电化学阻抗光谱进行常规时间间隔(0.5和0.75A cm(-2))长期操作1400小时,表现出偏振抗性的降低,并且在操作期间只有串抗的略微增加。得到的总降解速率低于0.5Acm(-2)的2%KH(-1)和0.75Acm(-2)的1%KH(-1)。最后,提出了一种基于燃料电极的演变的细胞降解机制。

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