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Influence of non-stoichiometric binary titanium oxides addition on the electrochemical properties of the barium ferrate plastic-bonded cathode for super-iron battery

机译:非化学计量二元氧化氧化物对超铁电池钡塑料塑性阴极电化学性能的影响

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The solid salts of the ferrate anion might offer significant advantages over conventional materials used as cathodes because of the three electron transfer associated with the reduction of Fe(VI) to Fe(III). In the present study, we try to improve the performance of the electrochemically synthesized barium ferrate cathode using non-stoichiometric binary titanium oxides: titanium monoxide (TiOx) and Magneli phases (TinO2n-1) addition performed throughout fabrication of plastic bonded cathode. It is shown that the addition of conductive Magneli phase materials into active material improves the performance of a cathode in terms of specific capacity, reversibility, and more positive equilibrium potential compared to BaFeO4 - based cathodes. It is believed that Magneli phase material enhances connectivity of the active BaFeO4 material and acts as reinforcement to the active mass thereby aiding retention of feature and porosity during cycling improving the reaction kinetics of the electrode. Also, our preliminary results demonstrate that the porous plastic bonded thin foil electrodes based on electrochemically synthesized barium ferrate can be considered in spiral wound battery geometry for higher rate capability. (C) 2017 Elsevier Ltd. All rights reserved.
机译:由于与减少Fe(VI)至Fe(III)相关的三种电子转移,铁乳环阴离子的固体盐可能提供与用作阴极的传统材料的显着优势。在本研究中,我们尝试使用非化学计量二烯钛氧化物的电化学合成的钡丙酸酯阴极的性能:在整个制造塑料粘合阴极的制造过程中进行的一氧化钛(TiOx)和Magneli相(Tino2N-1)添加。结果表明,与基于Bafebo 4的阴极相比,将导电的Magneli相材料加入活性材料的性能提高了阴极的性能,可逆性和更积极的平衡潜力。据信,Magneli相材料增强了活性Bafeo4材料的连接性,并用作活性物质的加强作用,从而在循环改善电极的反应动力学期间触及特征和孔隙率的抵抗。此外,我们的初步结果表明,基于电化学合成的钡铁酸盐的多孔塑料粘合薄箔电极可以考虑在螺旋缠绕电池几何形状中,以进行更高的速率。 (c)2017 Elsevier Ltd.保留所有权利。

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