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用于室内光回收的狭缝式涂布三元有机光伏电池

Slot-Die-Coated Ternary Organic Photovoltaics for Indoor Light Recycling.

作者信息

Farahat Mahmoud E, Laventure Audrey, Anderson Michael A, Mainville Mathieu, Tintori Francesco, Leclerc Mario, Ratcliff Erin L, Welch Gregory C

机构信息

Department of Chemistry, University of Calgary, 2500 University Drive N.W., Calgary, Alberta T2N 1N4, Canada.

Department of Materials Science and Engineering, University of Arizona, Tucson, Arizona 85721, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Sep 30;12(39):43684-43693. doi: 10.1021/acsami.0c11809. Epub 2020 Sep 18.

Abstract

Efficient organic photovoltaics (OPVs) based on slot-die-coated (SD) ternary blends were developed for low-intensity indoor light harvesting. For active layers processed in air and from eco-friendly solvents, our device performances (under 1 sun and low light intensity) are the highest reported values for fluoro-dithiophenyl-benzothiadiazole donor polymer-based OPVs. The N-annulated perylene diimide dimer acceptor was incorporated into a blend of donor polymer (FBT) and fullerene acceptor (PCBM) to give ternary bulk heterojunction blends. SD ternary-based devices under 1 sun illumination showed enhanced power conversion efficiency (PCE) from 6.8 to 7.7%. We observed enhancement in the short-circuit current density and open-circuit voltage of the devices. Under low light intensity light-emitting device illumination (ca. 2000 lux), the ternary-based devices achieved a PCE of 14.0% and a maximum power density of 79 μW/cm compared to a PCE of 12.0% and a maximum power density of 68 μW/cm for binary-based devices. Under the same illumination conditions, the spin-coated (SC) devices showed a PCE of 15.5% and a maximum power density of 88 μW/cm. Collectively, these results demonstrate the exceptional promise of a SD ternary blend system for indoor light harvesting and the need to optimize active layers based on industry-relevant coating approaches toward mini modules.

摘要

基于狭缝式涂布(SD)三元共混物开发了高效有机光伏电池(OPV),用于低强度室内光捕获。对于在空气中且使用环保溶剂加工的活性层,我们的器件性能(在1个太阳光照强度和低光照强度下)是基于氟代二噻吩基苯并噻二唑供体聚合物的OPV所报道的最高值。将氮杂苝二酰亚胺二聚体受体掺入供体聚合物(FBT)和富勒烯受体(PCBM)的共混物中,得到三元体异质结共混物。基于SD三元共混物的器件在1个太阳光照下的功率转换效率(PCE)从6.8%提高到了7.7%。我们观察到器件的短路电流密度和开路电压有所提高。在低光照强度发光器件照明(约2000勒克斯)下,基于三元共混物的器件实现了14.0%的PCE和79 μW/cm²的最大功率密度,而基于二元共混物的器件的PCE为12.0%,最大功率密度为68 μW/cm²。在相同照明条件下,旋涂(SC)器件的PCE为15.5%,最大功率密度为88 μW/cm²。总体而言,这些结果证明了SD三元共混体系在室内光捕获方面具有非凡前景,以及需要基于与工业相关的涂布方法对活性层进行优化以用于微型模块。

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