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效率超过18%的逐层处理三元有机光伏电池

Layer-by-Layer Processed Ternary Organic Photovoltaics with Efficiency over 18.

作者信息

Zhan Lingling, Li Shuixing, Xia Xinxin, Li Yaokai, Lu Xinhui, Zuo Lijian, Shi Minmin, Chen Hongzheng

机构信息

State Key Laboratory of Silicon Materials, MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310027, P. R. China.

Department of Physics, Chinese University of Hong Kong, Hong Kong, 999077, P. R. China.

出版信息

Adv Mater. 2021 Mar;33(12):e2007231. doi: 10.1002/adma.202007231. Epub 2021 Feb 18.

Abstract

Obtaining a finely tuned morphology of the active layer to facilitate both charge generation and charge extraction has long been the goal in the field of organic photovoltaics (OPVs). Here, a solution to resolve the above challenge via synergistically combining the layer-by-layer (LbL) procedure and the ternary strategy is proposed and demonstrated. By adding an asymmetric electron acceptor, BTP-S2, with lower miscibility to the binary donor:acceptor host of PM6:BO-4Cl, vertical phase distribution can be formed with donor-enrichment at the anode and acceptor-enrichment at the cathode in OPV devices during the LbL processing. In contrast, LbL-type binary OPVs based on PM6:BO-4Cl still show bulk-heterojunction like morphology. The formation of the vertical phase distribution can not only reduce charge recombination but also promote charge collection, thus enhancing the photocurrent and fill factor in LbL-type ternary OPVs. Consequently, LbL-type ternary OPVs exhibit the best efficiency of 18.16% (certified: 17.8%), which is among the highest values reported to date for OPVs. The work provides a facile and effective approach for achieving high-efficiency OPVs with expected morphologies, and demonstrates the LbL-type ternary strategy as being a promising procedure in fabricating OPV devices from the present laboratory study to future industrial production.

摘要

长期以来,在有机光伏(OPV)领域,获得具有精细调控形态的活性层以促进电荷产生和电荷提取一直是目标。在此,提出并展示了一种通过将逐层(LbL)工艺与三元策略协同结合来解决上述挑战的方案。通过添加与二元供体:受体主体PM6:BO - 4Cl混溶性较低的不对称电子受体BTP - S2,在LbL处理过程中,OPV器件的阳极处可形成供体富集、阴极处可形成受体富集的垂直相分布。相比之下,基于PM6:BO - 4Cl的LbL型二元OPV仍呈现出类似体相异质结的形态。垂直相分布的形成不仅可以减少电荷复合,还能促进电荷收集,从而提高LbL型三元OPV的光电流和填充因子。因此,LbL型三元OPV展现出18.16%的最佳效率(认证值:17.8%),这是迄今为止OPV报道的最高值之一。这项工作为实现具有预期形态的高效OPV提供了一种简便有效的方法,并证明从当前实验室研究到未来工业生产,LbL型三元策略在制造OPV器件方面是一种有前景的工艺。

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