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基于黄原胶的水凝胶电解质:通往稳定染料敏化太阳能电池的绿色途径。

Hydrogel Electrolytes Based on Xanthan Gum: Green Route towards Stable Dye-Sensitized Solar Cells.

作者信息

Galliano Simone, Bella Federico, Bonomo Matteo, Viscardi Guido, Gerbaldi Claudio, Boschloo Gerrit, Barolo Claudia

机构信息

Department of Chemistry and NIS Interdepartmental Center and INSTM Reference Centre, University of Torino, Via Pietro Giuria 7, 10125 Torino, Italy.

GAME Lab, Department of Applied Science and Technology (DISAT), Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, Italy.

出版信息

Nanomaterials (Basel). 2020 Aug 12;10(8):1585. doi: 10.3390/nano10081585.

Abstract

The investigation of innovative electrolytes based on nontoxic and nonflammable solvents is an up-to-date, intriguing challenge to push forward the environmental sustainability of dye-sensitized solar cells (DSSCs). Water is one of the best choices, thus 100% aqueous electrolytes are proposed in this work, which are gelled with xanthan gum. This well-known biosourced polymer matrix is able to form stable and easily processable hydrogel electrolytes based on the iodide/triiodide redox couple. An experimental strategy, also supported by the multivariate chemometric approach, is used here to study the main factors influencing DSSCs efficiency and stability, leading to an optimized system able to improve its efficiency by 20% even after a 1200 h aging test, and reaching an overall performance superior to 2.7%. In-depth photoelectrochemical investigation demonstrates that DSSCs performance based on hydrogel electrolytes depends on many factors (e.g., dipping conditions, redox mediator concentrations, etc.), that must be carefully quantified and correlated in order to optimize these hydrogels. Photovoltaic performances are also extremely reproducible and stable in an open cell filled in air atmosphere, noticeably without any vacuum treatments.

摘要

研究基于无毒且不可燃溶剂的新型电解质,是推动染料敏化太阳能电池(DSSC)环境可持续性的一项最新且引人入胜的挑战。水是最佳选择之一,因此本文提出了100%的水性电解质,它们用黄原胶凝胶化。这种著名的生物源聚合物基质能够基于碘化物/三碘化物氧化还原对形成稳定且易于加工的水凝胶电解质。本文采用了一种实验策略,多元化学计量学方法也对其提供了支持,用于研究影响DSSC效率和稳定性的主要因素,从而得到一个优化系统,该系统即使在经过1200小时老化测试后,效率仍能提高20%,总体性能优于2.7%。深入的光电化学研究表明,基于水凝胶电解质的DSSC性能取决于许多因素(如浸渍条件、氧化还原介质浓度等),为了优化这些水凝胶,必须仔细量化并关联这些因素。在填充有空气的开放式电池中,光伏性能也具有极高的可重复性和稳定性,明显无需任何真空处理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b82c/7466386/519e365eabaa/nanomaterials-10-01585-g001.jpg

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