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利用固态核磁共振光谱、晶体学建模和分子动力学模拟解析非富勒烯受体有机太阳能电池中的原子尺度相互作用

Resolving Atomic-Scale Interactions in Nonfullerene Acceptor Organic Solar Cells with Solid-State NMR Spectroscopy, Crystallographic Modelling, and Molecular Dynamics Simulations.

作者信息

R Luginbuhl Benjamin, Raval Parth, Pawlak Tomasz, Du Zhifang, Wang Tonghui, Kupgan Grit, Schopp Nora, Chae Sangmin, Yoon Sangcheol, Yi Ahra, Jung Kim Hyo, Coropceanu Veaceslav, Brédas Jean-Luc, Nguyen Thuc-Quyen, Reddy G N Manjunatha

机构信息

Center for Polymers & Organic Solids, Department of Chemistry and Biochemistry, University of California Santa Barbara, Santa Barbara, CA, 93106, USA.

University of Lille, CNRS, Centrale Lille Institut, Univ. Artois, UMR 8181, Unité de Catalyse et Chimie du Solide, Lille, F-59000, France.

出版信息

Adv Mater. 2022 Feb;34(6):e2105943. doi: 10.1002/adma.202105943. Epub 2021 Dec 22.

Abstract

Fused-ring core nonfullerene acceptors (NFAs), designated "Y-series," have enabled high-performance organic solar cells (OSCs) achieving over 18% power conversion efficiency (PCE). Since the introduction of these NFAs, much effort has been expended to understand the reasons for their exceptional performance. While several studies have identified key optoelectronic properties that govern high PCEs, little is known about the molecular level origins of large variations in performance, spanning from 5% to 18% PCE, for example, in the case of PM6:Y6 OSCs. Here, a combined solid-state NMR, crystallography, and molecular modeling approach to elucidate the atomic-scale interactions in Y6 crystals, thin films, and PM6:Y6 bulk heterojunction (BHJ) blends is introduced. It is shown that the Y6 morphologies in BHJ blends are not governed by the morphology in neat films or single crystals. Notably, PM6:Y6 blends processed from different solvents self-assemble into different structures and morphologies, whereby the relative orientations of the sidechains and end groups of the Y6 molecules to their fused-ring cores play a crucial role in determining the resulting morphology and overall performance of the solar cells. The molecular-level understanding of BHJs enabled by this approach will guide the engineering of next-generation NFAs for stable and efficient OSCs.

摘要

稠环核心非富勒烯受体(NFAs),即“Y系列”,已使高性能有机太阳能电池(OSCs)的功率转换效率(PCE)超过18%。自从引入这些NFAs以来,人们付出了很多努力来理解它们卓越性能的原因。虽然几项研究已经确定了决定高PCE的关键光电特性,但对于性能从5%到18%(例如在PM6:Y6 OSCs的情况下)的大幅变化的分子水平起源却知之甚少。在此,介绍了一种结合固态核磁共振、晶体学和分子建模的方法,以阐明Y6晶体、薄膜和PM6:Y6本体异质结(BHJ)共混物中的原子尺度相互作用。结果表明,BHJ共混物中Y6的形态不受纯薄膜或单晶中形态的控制。值得注意的是,从不同溶剂加工得到的PM6:Y6共混物自组装成不同的结构和形态,其中Y6分子的侧链和端基相对于其稠环核心的相对取向在决定太阳能电池的最终形态和整体性能方面起着关键作用。通过这种方法对BHJ进行的分子水平理解将指导下一代用于稳定高效OSCs的NFAs的工程设计。

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