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使用本征电荷产生材料的有机太阳能电池新途径。

New Avenues for Organic Solar Cells Using Intrinsically Charge-Generating Materials.

作者信息

Hume Paul A, Price Michael B, Hodgkiss Justin M

机构信息

School of Chemical and Physical Sciences, Victoria University of Wellington, Wellington, 6012, New Zealand.

MacDiarmid Institute for Advanced Materials and Nanotechnology, Wellington, 6012, New Zealand.

出版信息

JACS Au. 2024 Mar 18;4(4):1295-1302. doi: 10.1021/jacsau.4c00046. eCollection 2024 Apr 22.

Abstract

The molecular electron acceptor material Y6 has been a key part of the most recent surge in organic solar cell sunlight-to-electricity power conversion efficiency, which is now approaching 20%. Numerous studies have sought to understand the fundamental photophysical reasons for the exceptional performance of Y6 and its growing family of structural derivatives. Though significant uncertainty about several details remains, many have concluded that initially photogenerated excited states rapidly convert into electron-hole charge pairs in the neat material. These charge pairs are characterized by location of the electron and hole on different Y6 molecules, in contrast to the Frenkel excitons that dominate the behavior of most organic semiconductor materials. Here, we summarize the current state of knowledge regarding Y6 photophysics and the key observations that have led to it. We then link this understanding to other advances, such as the role of quadrupolar fields in donor-acceptor blends, and the importance of molecular interactions and organization in providing the structural basis for Y6's properties. Finally, we turn our attention to ways of making use of the new photophysics of Y6, and suggest molecular doping, crystal structure tuning, and electric field engineering as promising avenues for future exploration.

摘要

分子电子受体材料Y6是近期有机太阳能电池实现阳光到电的功率转换效率大幅提升的关键因素,目前该效率已接近20%。众多研究试图探究Y6及其不断增加的结构衍生物系列表现优异的基本光物理原因。尽管一些细节仍存在很大不确定性,但许多研究得出结论,在纯净材料中,最初光生的激发态会迅速转化为电子 - 空穴电荷对。这些电荷对的特征是电子和空穴位于不同的Y6分子上,这与主导大多数有机半导体材料行为的弗伦克尔激子不同。在此,我们总结了关于Y6光物理的当前知识状态以及导致这些知识的关键观察结果。然后,我们将这种理解与其他进展联系起来,例如四极场在供体 - 受体共混物中的作用,以及分子相互作用和排列在为Y6的性质提供结构基础方面的重要性。最后,我们将注意力转向利用Y6新光物理的方法,并提出分子掺杂、晶体结构调控和电场工程作为未来探索的有前景途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c3d/11040696/5e0ab685b37a/au4c00046_0001.jpg

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