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苯并[d]噻唑基宽能隙给体聚合物使有机太阳能电池效率达到 19.54%,同时具有良好的批间重现性和通用性。

Benzo[d]thiazole Based Wide Bandgap Donor Polymers Enable 19.54% Efficiency Organic Solar Cells Along with Desirable Batch-to-Batch Reproducibility and General Applicability.

机构信息

School of Chemical Engineering and State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, P. R. China.

National Synchrotron Light Source II Brookhaven National Lab, Suffolk, Upton, NY, 11973, USA.

出版信息

Adv Mater. 2023 May;35(21):e2300631. doi: 10.1002/adma.202300631. Epub 2023 Mar 30.

Abstract

The limited selection pool of high-performance wide bandgap (WBG) polymer donors is a bottleneck problem of the nonfullerene acceptor (NFA) based organic solar cells (OSCs) that impedes the further improvement of their photovoltaic performances. Herein, a series of new WBG polymers, namely PH-BTz, PS-BTz, PF-BTz, and PCl-BTz, are developed by using the bicyclic difluoro-benzo[d]thiazole (BTz) as the acceptor block and benzo[1,2-b:4,5-b']dithiophene (BDT) derivatives as the donor units. By introducing S, F, and Cl atoms to the alkylthienyl sidechains on BDT, the resulting polymers exhibit lowered energy levels and enhanced aggregation properties. The fluorinated PBTz-F not only exhibits a low-lying HOMO level, but also has stronger face-on packing order and results in more uniform fibril-like interpenetrating networks in the related PF-BTz:L8-BO blend. A high-power conversion efficiency (PCE) of 18.57% is achieved. Moreover, PBTz-F also exhibits a good batch-to-batch reproducibility and general applicability. In addition, ternary blend OSCs based on the host PBTz-F:L8-BO blend and PM6 guest donor exhibits a further enhanced PCE of 19.54%, which is among the highest values of OSCs.

摘要

高性能宽能隙(WBG)聚合物施主的有限选择池是基于非富勒烯受体(NFA)的有机太阳能电池(OSC)的瓶颈问题,阻碍了其光伏性能的进一步提高。在此,通过使用双环二氟苯并[d]噻唑(BTz)作为受主块和苯并[1,2-b:4,5-b']二噻吩(BDT)衍生物作为给体单元,开发了一系列新型 WBG 聚合物,即 PH-BTz、PS-BTz、PF-BTz 和 PCl-BTz。通过在 BDT 的烷基噻吩侧链上引入 S、F 和 Cl 原子,得到的聚合物表现出更低的能级和增强的聚集特性。氟化的 PBTz-F 不仅具有低 HOMO 能级,而且具有更强的面对面堆积有序性,并在相关的 PF-BTz:L8-BO 共混物中产生更均匀的纤维状互穿网络。实现了 18.57%的高功率转换效率(PCE)。此外,PBTz-F 还表现出良好的批间重现性和通用性。此外,基于主体 PBTz-F:L8-BO 共混物和 PM6 客体施主的三元共混 OSC 进一步提高了 19.54%的 PCE,这是 OSC 中的最高值之一。

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