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通过调节缺电子单元提高含三异丙基硅乙炔基取代二噻吩并苯并二噻吩的D-π-A共聚物的光伏性能

Enhanced Photovoltaic Performance in D-π-A Copolymers Containing Triisopropylsilylethynyl-Substituted Dithienobenzodithiophene by Modulating the Electron-Deficient Units.

作者信息

Tong Junfeng, An Lili, Lv Jie, Guo Pengzhi, Wang Xunchang, Yang Chunyan, Xia Yangjun

机构信息

School of Materials Science and Engineering, Lanzhou Jiaotong University, Lanzhou 730070, China.

School of Chemical Engineering, Northwest Minzu University, Lanzhou 730030, China.

出版信息

Polymers (Basel). 2018 Dec 21;11(1):12. doi: 10.3390/polym11010012.

Abstract

Three alternated D-π-A type 5,10-bis(triisopropylsilylethynyl)dithieno[2,3-:2',3'-']-benzo[1,2-:4,5-']dithiophene (DTBDT-TIPS)-based semiconducting conjugated copolymers (CPs), PDTBDT-TIPS-DTBT-OD, PDTBDT-TIPS-DTFBT-OD, and PDTBDT-TIPS-DTNT-OD, bearing different A units, including benzothiadiazole (BT), 5,6-difluorinated-BT (FBT) and naphtho[1,2-:5,6-']-bis[1,2,5]thiadiazole (NT), were designed and synthesized to investigate the impact of the variation in electron-deficient units on the properties of these photovoltaic polymers. It was exhibited that the down-shifted highest occupied molecular orbital energy level (), the enhanced aggregation in both the chlorobenzene solution and the solid film, as well as the better molecular planarity, were achieved using methods involving fluorination and the replacement of BT with NT on the polymer backbone. The absorption profile was little changed upon fluorination; however, it was greatly broadened during replacement of BT with NT. Consequently, the optimized photovoltaic device based on the PDTBDT-TIPS-DTNT-OD exhibited synchronous enhancements in the open-circuit voltage () of 0.88 V, the short-circuit current density () of 7.21 mA cm, and the fill factor () of 52.99%, resulting in a drastic elevation in the PCE by 129% to 3.37% compared to that of the PDTBDT-TIPS-DTBT-OD. This was triggered by PDTBDT-TIPS-DTNT-OD's broadened absorption, deepened , improved coplanarity, and enhanced SCLC mobility (which increased 3.9 times), as well as a favorable morphology of the active layer. Unfortunately, the corresponding PCE deteriorated after incorporating fluorine into the BT, due to the oversized aggregation and large phase separation morphology in the blend films, severely impairing its . Our preliminary results demonstrated that the replacement of BT with NT in a D-π-A type polymer backbone was an effective strategy of tuning the molecular structure to achieve highly efficient polymer solar cells (PSCs).

摘要

设计并合成了三种交替的基于D-π-A型5,10-双(三异丙基甲硅烷基乙炔基)二噻吩并[2,3-b:2',3'-d]-苯并[1,2-b:4,5-b']二噻吩(DTBDT-TIPS)的半导体共轭聚合物(CP),即PDTBDT-TIPS-DTBT-OD、PDTBDT-TIPS-DTFBT-OD和PDTBDT-TIPS-DTNT-OD,它们带有不同的A单元,包括苯并噻二唑(BT)、5,6-二氟苯并噻二唑(FBT)和萘并[1,2-b:5,6-d]-双[1,2,5]噻二唑(NT),以研究缺电子单元的变化对这些光伏聚合物性能的影响。结果表明,通过在聚合物主链上进行氟化以及用NT取代BT的方法,可以实现最高占据分子轨道能级()下移、氯苯溶液和固体薄膜中聚集增强以及更好的分子平面性。氟化后吸收光谱变化不大;然而,用NT取代BT时吸收光谱大大拓宽。因此,基于PDTBDT-TIPS-DTNT-OD的优化光伏器件在开路电压()为0.88 V、短路电流密度()为7.21 mA cm和填充因子()为

52.99%方面实现了同步增强,与PDTBDT-TIPS-DTBT-OD相比,光电转换效率(PCE)急剧提高了129%,达到3.37%。这是由PDTBDT-TIPS-DTNT-OD拓宽的吸收、加深的、改善的共平面性、增强的SCLC迁移率(提高了3.9倍)以及活性层良好的形态引发的。不幸的是,将氟引入BT后相应的PCE恶化,这是由于共混薄膜中过大的聚集和大的相分离形态,严重损害了其。我们的初步结果表明,在D-π-A型聚合物主链中用NT取代BT是调整分子结构以实现高效聚合物太阳能电池(PSC)的有效策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ec2/6401703/b5e482430671/polymers-11-00012-g001.jpg

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