Ma Pin, Fang Yanyan, Li Ang, Wen Boxin, Cheng Hongbo, Zhou Xiaowen, Shi Yumeng, Yang Hui Ying, Lin Yuan
International Collaborative Laboratory of 2D Materials for Optoelectronics Science and Technology of Ministry of Education, Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, China.
Nanoscale. 2021 Apr 21;13(15):7140-7151. doi: 10.1039/d0nr08765c. Epub 2021 Apr 6.
Gel electrolytes are promising candidates for dye-sensitized solar cells (DSSCs) and other devices, but the ways to obtain stable gels always result in sacrifice of their ionic conductivity. This contradiction seriously limits the practical application of gel electrolytes. Herein, a new design strategy using rich carboxylic group-modified silica nanoparticles (COOH-SiO) with a branched, well-organized framework to develop ionic liquid-based gel electrolytes possessing high conductivity is demonstrated. The branched network of COOH-SiO and the strong interaction in electrolytes result in the effective solidification of ionic liquids. Moreover, adding COOH-SiO to ionic liquid electrolytes contributes to salt dissociation, decreases the activation energy, and improves the charge transport and recombination characteristics at the electrolyte/electrode interface. DSSCs fabricated with COOH-SiO nanoparticles deliver a higher short-circuit photocurrent density (J) than the reference cell. A maximum efficiency of 8.02% with the highest J value of 16.60 mA cm is obtained for solar cells containing 6 wt% COOH-SiO.
凝胶电解质是染料敏化太阳能电池(DSSC)及其他器件的理想候选材料,但获得稳定凝胶的方法往往会导致其离子电导率降低。这种矛盾严重限制了凝胶电解质的实际应用。在此,展示了一种新的设计策略,即使用具有支化、有序结构的富含羧基的二氧化硅纳米颗粒(COOH-SiO)来开发具有高电导率的离子液体基凝胶电解质。COOH-SiO的支化网络以及电解质中的强相互作用导致离子液体有效固化。此外,向离子液体电解质中添加COOH-SiO有助于盐解离,降低活化能,并改善电解质/电极界面处的电荷传输和复合特性。用COOH-SiO纳米颗粒制备的DSSC比参比电池具有更高的短路光电流密度(J)。对于含有6 wt% COOH-SiO的太阳能电池,可获得8.02%的最大效率,最高J值为16.60 mA cm。