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用密度泛函理论对固体氧化物燃料电池阳极三相边界处的电化学进行直接建模:批判性综述。

Direct modeling of the electrochemistry in the three-phase boundary of solid oxide fuel cell anodes by density functional theory: a critical overview.

作者信息

Shishkin M, Ziegler T

机构信息

Department of Chemistry, University of Calgary, University Drive 2500, Calgary, AB T2N 1N4, Canada.

出版信息

Phys Chem Chem Phys. 2014 Feb 7;16(5):1798-808. doi: 10.1039/c3cp53943a.

DOI:10.1039/c3cp53943a
PMID:24326948
Abstract

The first principles modeling of electrochemical reactions has proven useful for the development of efficient, durable and low cost solid oxide full cells (SOFCs). In this account we focus on recent advances in modeling of structural, electronic and catalytic properties of the SOFC anodes based on density functional theory (DFT) first principle calculations. As a starting point, we highlight that the adequate analysis of cell electrochemistry generally requires modeling of chemical reactions at the metal/oxide interface rather than on individual metal or oxide surfaces. The atomic models of Ni/YSZ and Ni/CeO2 interfaces, required for DFT simulations of reactions on SOFC anodes are discussed next, together with the analysis of the electronic structure of these interfaces. Then we proceed to DFT-based findings on charge transfer mechanisms during redox reactions on these two anodes. We provide a comparison of the electronic properties of Ni/YSZ and Ni/CeO2 interfaces and present an interpretation of their different chemical performances. Subsequently we discuss the computed energy pathways of fuel oxidation mechanisms, obtained by various groups to date. We also discuss the results of DFT studies combined with microkinetic modeling as well as the results of kinetic Monte Carlo simulations. In conclusion we summarize the key findings of DFT modeling of metal/oxide interfaces to date and highlight possible directions in the future modeling of SOFC anodes.

摘要

电化学反应的第一性原理建模已被证明对开发高效、耐用且低成本的固体氧化物全电池(SOFC)很有用。在本报告中,我们重点关注基于密度泛函理论(DFT)第一性原理计算的SOFC阳极结构、电子和催化性能建模的最新进展。作为起点,我们强调对电池电化学的充分分析通常需要对金属/氧化物界面而非单个金属或氧化物表面的化学反应进行建模。接下来讨论了SOFC阳极反应DFT模拟所需的Ni/YSZ和Ni/CeO₂界面的原子模型,以及对这些界面电子结构的分析。然后我们继续介绍基于DFT的关于这两种阳极氧化还原反应过程中电荷转移机制的研究结果。我们比较了Ni/YSZ和Ni/CeO₂界面的电子性质,并对它们不同的化学性能进行了解释。随后,我们讨论了迄今为止不同研究小组获得的燃料氧化机制的计算能量路径。我们还讨论了结合微观动力学建模的DFT研究结果以及动力学蒙特卡罗模拟的结果。总之,我们总结了迄今为止金属/氧化物界面DFT建模的关键发现,并强调了未来SOFC阳极建模可能的方向。

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Direct modeling of the electrochemistry in the three-phase boundary of solid oxide fuel cell anodes by density functional theory: a critical overview.用密度泛函理论对固体氧化物燃料电池阳极三相边界处的电化学进行直接建模:批判性综述。
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