首页 | 本学科首页   官方微博 | 高级检索  
     


Effect of spacer insertion in a commonly used dithienosilole/benzothiadiazole-based low band gap copolymer for polymer solar cells
Authors:Hussein Medlej  Hussein Awada  Mamatimin Abbas  Guillaume Wantz  Antoine Bousquet  Eric Grelet  Kamal Hariri  Tayssir Hamieh  Roger C. Hiorns  Christine Dagron-Lartigau
Affiliation:1. IPREM CNRS-UMR 5254, Université de Pau et des Pays de l’Adour, Hélioparc, 2 avenue Président Angot, 64053 Pau Cedex 9, France;2. Université de Bordeaux, Laboratoire IMS, UMR CNRS 5218, Ecole Nationale Supérieure de Chimie, Biologie et Physique, 16 Avenue Pey Berland, 33607 Pessac Cedex, France;3. CNRS-Université de Bordeaux, Centre de Recherche Paul-Pascal, 115 Avenue Schweitzer, 33600 Pessac, France;4. Laboratoire de Matériaux, Catalyse, Environnement et Méthodes Analytiques (MCEMA), Campus Rafic Hariri, Hadath, Lebanon;5. CNRS, IPREM UMR 5254, Hélioparc, 2 avenue Président Angot, 64053 Pau Cedex 9, France
Abstract:Dithienosilole-benzothiadiazole based low bandgap copolymers remain promising material for organic photovoltaics. A new copolymer, poly[(4,4′-dioctyldithieno[3,2-b:2′,3′-d]silole-2,6-diyl)-alt-{4,7-bis[2-(3-hexyl)thienyl]-2,1,3-benzothiadiazole-5,5′-diyl}] (PDTSDTBT) was designed by introducing a thiophene spacer bearing a hexyl chain at β-position in the main backbone and compared to its analog poly[(4,4′-dioctyldithieno[3,2-b:2′,3′-d]silole-2,6-diyl)-alt-(2,1,3-benzothiadiazole-4,7-diyl)] (PDTSBT). In PDTSDTBT, linear alkyl chains on silicon were chosen due to facile and cheap access and the inserted 3-hexylthiophene units were chosen to increase solubility and molar mass, a weak point with PDTSBT. The two parameters are important to optimize photovoltaic performances. To compare characteristics, PDTSDTBT of molar masses greater than, and equal to a sample of PDTSBT, were prepared. Pd-catalyzed Stille cross-coupling reactions in a micro-wave reactor to promote an efficient copolymerisations. A strong absorption ranging from 370 nm to 800 nm and a good thermal stability were observed. PDTSDTBT showed better solubility and higher degree of crystallinity. Facile synthesis of high molar masses meant that higher efficiencies, around 40% greater, could be obtained with PDTSDTBT. The polymer was demonstrated to be susceptible to improvement through the use of device-additives. For example, under initial optimisations using PDTSDTBT:PC60BM blend at a ratio of 1:1 delivered a power conversion efficiency of 2.13% with JSC = 7.73 (mA/cm2), under AM 1.5 (100 mW/cm2) illumination.
Keywords:Low band gap polymers   Copolymers   Organic solar cells   Polymer solar cells   Stille coupling   Microwave
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号