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A novel approach for analyzing electrochemical properties of mixed conducting solid oxide fuel cell anode materials by impedance spectroscopy

机译:阻抗谱分析混合导电固体氧化物燃料电池负极材料电化学性能的新方法

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摘要

For application of acceptor-doped mixed conducting oxides as solid oxide fuel cell (SOFC) anodes, high electrochemical surface activity as well as acceptable electronic and ionic conductivity are crucial. In a reducing atmosphere, particularly the electronic conductivity of acceptor-doped oxides can become rather low and the resulting complex interplay of electrochemical reactions and charge transport processes makes a mechanistic interpretation of impedance measurements very complicated. In order to determine all relevant resistive and capacitive contributions of mixed conducting electrodes in a reducing atmosphere, a novel electrode design and impedance-based analysis technique is therefore introduced. Two interdigitating metallic current collectors are placed in a microelectrode, which allows in-plane measurements within the electrode as well as electrochemical measurements versus a counter electrode. Equivalent circuit models for quantifying the spectra of both measurement modes are developed and applied to simultaneously fit both spectra, using the same parameter set. In this manner, the electronic and ionic conductivity of the material as well as the area-specific resistance of the surface reaction and the chemical capacitance can be determined on a single microelectrode in a H2-H2O atmosphere. The applicability of this new tool was demonstrated in SrTi_(0.7)Fe_(0.3)O_(3-δ) (STFO) thin film microelectrodes, deposited on single-crystalline yttria-stabilized zirconia (YSZ) substrates. All materials parameters that contribute to the polarization resistance of STFO electrodes in a reducing atmosphere could thus be quantified.
机译:对于将掺杂受体的混合导电氧化物用作固体氧化物燃料电池(SOFC)阳极,高电化学表面活性以及可接受的电子和离子电导率至关重要。在还原性气氛中,特别是受主掺杂的氧化物的电子电导率可能变得相当低,并且电化学反应和电荷传输过程所产生的复杂相互作用使得阻抗测量的机械解释非常复杂。为了确定在还原气氛中混合导电电极的所有相关电阻和电容贡献,因此引入了新颖的电极设计和基于阻抗的分析技术。将两个相互交叉的金属集电器放置在微电极中,该微电极允许在电极内进行面内测量以及相对于对电极进行电化学测量。开发了用于量化两种测量模式光谱的等效电路模型,并使用相同的参数集将其应用于同时拟合两种光谱。以这种方式,可以在H2-H2O气氛中的单个微电极上确定材料的电子和离子电导率以及表面反应的比电阻和化学电容。在沉积在单晶氧化钇稳定的氧化锆(YSZ)衬底上的SrTi_(0.7)Fe_(0.3)O_(3-δ)(STFO)薄膜微电极中证明了该新工具的适用性。因此,可以量化有助于在还原气氛中STFO电极的极化电阻的所有材料参数。

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