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柔性纤维染料敏化太阳能电池光电转换效率的提高。

Improvement in the photoelectric conversion efficiency for the flexible fibrous dye-sensitized solar cells.

作者信息

Yue Gentian, Liu Xianqing, Chen Ying, Huo Jinghao, Zheng Haiwu

机构信息

Henan Key Laboratory of Photovoltaic Materials, Henan University, Kaifeng, 475004, China.

School of Physics & Electronics, Henan University, Kaifeng, 475004, China.

出版信息

Nanoscale Res Lett. 2018 Jun 28;13(1):188. doi: 10.1186/s11671-018-2601-7.

Abstract

A dye-sensitized and flexible TiO fiber with multilayer structure was prepared by using brush method as the photoanode in the efficient flexible fibrous dye-sensitized solar cells (FFDSSCs) to avoid electronic recombination and improve the electronic capture efficiency. The composite Pt counter electrode, preparation from the surface modification of the electrodeposited Pt wire by using a simple one-step thermal decomposition approach of HPtCl isopropanol and n-butyl alcohol (volume ratio = 1:1) solution, provided a significant improvement in electrocatalytic activity, which was confirmed by extensive electrochemical tests. The FFDSSC assembled with the fiber-shaped TiO photoanode and the composite Pt counter electrode achieves an enhanced photoelectric conversion efficiency of 6.35%, higher than that of the FFDSSC with monolayer fibrous TiO photoanode and electrodeposited Pt wire counter electrode. More importantly, the photoelectric conversion efficiency of 6.35% is comparable to that of the FFDSSC based on the pure Pt wire counter electrode (6.32%). The FFDSSC with high elasticity, flexibility, and stretchability can adapt to complex mechanical deformations, which is of great significance for the development of wearable electronics in the future.

摘要

采用刷涂法制备了具有多层结构的染料敏化柔性TiO纤维,将其作为高效柔性纤维染料敏化太阳能电池(FFDSSCs)中的光阳极,以避免电子复合并提高电子捕获效率。通过使用HPtCl异丙醇和正丁醇(体积比=1:1)溶液的简单一步热分解方法对电沉积Pt丝进行表面改性制备的复合Pt对电极,其电催化活性有显著提高,这通过广泛的电化学测试得到了证实。由纤维状TiO光阳极和复合Pt对电极组装而成的FFDSSC实现了6.35%的增强光电转换效率,高于具有单层纤维状TiO光阳极和电沉积Pt丝对电极的FFDSSC。更重要的是,6.35%的光电转换效率与基于纯Pt丝对电极的FFDSSC(6.32%)相当。具有高弹性、柔韧性和拉伸性的FFDSSC能够适应复杂的机械变形,这对未来可穿戴电子产品的发展具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d70/6023803/6c977f13ca2e/11671_2018_2601_Fig1_HTML.jpg

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