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Atomic-scale mechanisms of oxygen electrode delamination in solid oxide electrolyzer cells

机译:固体氧化物电解槽中氧电极分层的原子尺度机理

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Materials used for different components (electrodes, electrolyte, steel interconnects, etc.) of solid oxide electrolyzer cell (SOEC) devices for hydrogen production have to function in aggressive, corrosive environments and in the presence of electric fields. This results in a number of degradation processes at interfaces between components. In this study, we used a combination of first-principles, density-functional-theory (DFT) calculations and thermodynamic modeling to elucidate the main processes that contribute into the oxygen delamination in typical SOEC device consisting of yttria-stabilized zirconia (YSZ) electrolyte and Sr-doped LaMnO_3 (LSM) oxygen electrode. We found that high temperature inter-diffusion of different atoms across the LSM/YSZ interface significantly affects structural stability of the materials and their interface. In particular, we found that La and Sr substitutional defects positioned in ZrO_2 oxide and near LSM/YSZ interface significantly change oxygen transport which may develop pressure buildup in the interfacial region and eventually develop delamination process. Simple models for estimating these effects are proposed, and different possibilities for inhibiting and/or mitigating undesirable delamination processes are discussed.
机译:用于制氢的固体氧化物电解池(SOEC)装置的不同组件(电极,电解质,钢互连件等)所使用的材料必须在腐蚀性,腐蚀性环境和电场中起作用。这导致组件之间的接口处发生许多降级过程。在这项研究中,我们结合了第一性原理,密度泛函理论(DFT)计算和热力学模型,阐明了在典型的由氧化钇稳定的氧化锆(YSZ)电解质组成的SOEC装置中导致氧分层的主要过程。和掺Sr的LaMnO_3(LSM)氧电极。我们发现,不同原子在LSM / YSZ界面上的高温相互扩散会显着影响材料及其界面的结构稳定性。特别是,我们发现位于ZrO_2氧化物中和LSM / YSZ界面附近的La和Sr替代缺陷会显着改变氧的运输,这可能会在界面区域形成压力并最终形成分层过程。提出了用于估计这些影响的简单模型,并讨论了抑制和/或减轻不希望的分层过程的不同可能性。

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