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Design and development of electronic- and micro-structures for multi-functional working electrodes in dye-sensitized solar cells

机译:染料敏化太阳能电池中多功能工作电极的电子和微结构的设计和开发

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This paper outlines a new strategy to optimize the performance of electrodes in dye-sensitized solar cells (DSSCs), through the engineering of electronic structures in conjunction with the micro-structures of the devices. We propose a simple hydrolysis method for the fabrication of a family of quasi-core-shell TiO2 (hydrolysis)/PbS composites for working electrodes. Measurements confirm a shift in absorption from the UV to visible range. We also measured cell performance, including short-circuit photocurrent, open-circuit photovoltage, and the power conversion efficiency (eta) of DSSCs. The obtained eta of DSSC (6.05%) with a TiO2 (P-25)/TiO2 (hydrolysis) + 0.005 M PbS electrode is substantially higher than that of the conventional DSSC (5.11%) with a TiO2 (P-25) electrode, due to improved p-n junctions, light-scattering, and light absorption. Finally, the shell of TiO2 (hydrolysis) protected the core of PbS from the corrosive effects of electrolytes, thereby prolonging the life span of the DSSC. This novel approach to electrode design could lead to advances in DSSC as well as other energy applications including photo-catalysis technology. (C) 2014 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:本文概述了通过电子结构与器件的微结构相结合来优化染料敏化太阳能电池(DSSC)中电极性能的新策略。我们提出了一种简单的水解方法,用于制造用于工作电极的准核壳TiO2(水解)/ PbS复合材料系列。测量证实了吸收从紫外线到可见光范围的变化。我们还测量了电池性能,包括短路光电流,开路光电压和DSSC的功率转换效率(eta)。使用TiO2(P-25)/ TiO2(水解)+ 0.005 M PbS电极获得的DSSC(6.05%)的eta值明显高于使用TiO2(P-25)电极的常规DSSC(5.11%)的eta,由于改善了pn结,光散射和光吸收。最后,TiO2的外壳(水解)保护了PbS的核免受电解质的腐蚀作用,从而延长了DSSC的寿命。这种新颖的电极设计方法可能会导致DSSC以及包括光催化技术在内的其他能源应用的进步。 (C)2014日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。版权所有。

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