Chlorinated Polythiophene-Based Donors with Reduced Energy Loss for Organic Solar Cells

IF 5.5 1区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Chinese Journal of Chemistry Pub Date : 2024-09-28 DOI:10.1002/cjoc.202400793
Huixue Li, Junzhen Ren, Lijiao Ma, Zhihao Chen, Yue Yu, Jianqiu Wang, Shaoqing Zhang
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Abstract

The industrialization of organic solar cells (OSCs) faces challenges due to complex synthesis routes and high costs of organic photovoltaic materials. To address this, we designed and synthesized a series of polythiophene-based donor materials, PTVT-T-xCl (20%Cl, 50%Cl and 100%Cl), by introducing different degrees of chlorine substitution within their conjugated skeletons. The incorporation of chlorine atoms does not change the planar conformation of the conjugated main chain of the control polymer, PTVT-T, but effectively reduces their HOMO energy levels (≤ –5.3 eV) and alters the crystallinity of the polymers. In addition, when preparing OSC by blending with non-fused electron acceptor A4T-16, the non-radiative energy loss of the three photovoltaic devices gradually decreased with the increase of chlorine content (0.343, 0.278 and 0.189 eV, respectively). Notably, PTVT-T-20%Cl exhibited a more moderate nanoscale phase separation with the acceptor, leading to efficient exciton dissociation, lower bimolecular recombination, and thus a favorable current in the OSCs. Consequently, the photovoltaic device based on PTVT-T-20%Cl:A4T-16 achieved a remarkable photovoltaic efficiency of 11.8%. In addition, the PTVT-T-xCl series polymers show much lower material-only-cost (MOC) values than the other reported photoactive material systems. This work provides the way for the development of low-cost photovoltaic materials and the industrial application of OSC, overcoming previous limitations posed by high energy losses in polythiophene-based donors.

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可减少有机太阳能电池能量损耗的氯化聚噻吩基捐献者
由于有机光伏材料合成路线复杂、成本高昂,有机太阳能电池(OSC)的产业化面临挑战。为此,我们通过在共轭骨架中引入不同程度的氯取代,设计并合成了一系列基于聚噻吩的供体材料 PTVT-T-xCl(20%Cl、50%Cl 和 100%Cl )。氯原子的加入不会改变对照聚合物 PTVT-T 共轭主链的平面构象,但会有效降低其 HOMO 能级(≤ -5.3 eV),并改变聚合物的结晶度。此外,在与非熔合电子受体 A4T-16 共混制备 OSC 时,随着氯含量的增加,三种光伏器件的非辐射能量损失逐渐降低(分别为 0.343、0.278 和 0.189 eV)。值得注意的是,PTVT-T-20%Cl 与受体之间的纳米级相分离更为缓和,从而导致激子高效解离、双分子重组降低,进而在 OSC 中产生有利的电流。因此,基于 PTVT-T-20%Cl:A4T-16 的光伏器件实现了 11.8% 的显著光伏效率。此外,PTVT-T-xCl 系列聚合物的材料单成本(MOC)值远远低于其他已报道的光活性材料体系。这项工作为开发低成本光伏材料和 OSC 的工业应用提供了途径,克服了以往聚噻吩基供体能量损失高所带来的限制。
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来源期刊
Chinese Journal of Chemistry
Chinese Journal of Chemistry 化学-化学综合
CiteScore
8.80
自引率
14.80%
发文量
422
审稿时长
1.7 months
期刊介绍: The Chinese Journal of Chemistry is an international forum for peer-reviewed original research results in all fields of chemistry. Founded in 1983 under the name Acta Chimica Sinica English Edition and renamed in 1990 as Chinese Journal of Chemistry, the journal publishes a stimulating mixture of Accounts, Full Papers, Notes and Communications in English.
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