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离域化能够在有机光伏电池中实现高效电荷产生,即便能量偏移很小甚至没有。

Delocalisation enables efficient charge generation in organic photovoltaics, even with little to no energetic offset.

作者信息

Balzer Daniel, Kassal Ivan

机构信息

School of Chemistry, University of Sydney Nano Institute, University of Sydney NSW 2006 Australia

出版信息

Chem Sci. 2024 Feb 8;15(13):4779-4789. doi: 10.1039/d3sc05409h. eCollection 2024 Mar 27.

Abstract

Organic photovoltaics (OPVs) are promising candidates for solar-energy conversion, with device efficiencies continuing to increase. However, the precise mechanism of how charges separate in OPVs is not well understood because low dielectric constants produce a strong attraction between the charges, which they must overcome to separate. Separation has been thought to require energetic offsets at donor-acceptor interfaces, but recent materials have enabled efficient charge generation with small offsets, or with none at all in neat materials. Here, we extend delocalised kinetic Monte Carlo (dKMC) to develop a three-dimensional model of charge generation that includes disorder, delocalisation, and polaron formation in every step from photoexcitation to charge separation. Our simulations show that delocalisation dramatically increases charge-generation efficiency, partly by enabling excitons to dissociate in the bulk. Therefore, charge generation can be efficient even in devices with little to no energetic offset, including neat materials. Our findings demonstrate that the underlying quantum-mechanical effect that improves the charge-separation kinetics is faster and longer-distance hops between delocalised states, mediated by hybridised states of exciton and charge-transfer character.

摘要

有机光伏电池(OPV)是太阳能转换领域颇具潜力的候选者,其器件效率不断提高。然而,由于低介电常数会使电荷之间产生强烈吸引力,而电荷必须克服这种吸引力才能分离,所以目前对于OPV中电荷如何分离的精确机制尚不清楚。此前人们认为电荷分离需要施主 - 受主界面存在能量偏移,但最近的材料已能实现具有小能量偏移甚至在纯材料中完全没有能量偏移的高效电荷产生。在此,我们扩展了离域动力学蒙特卡罗(dKMC)方法,以建立一个电荷产生的三维模型,该模型涵盖了从光激发到电荷分离的每一步中的无序、离域和极化子形成。我们的模拟表明,离域显著提高了电荷产生效率,部分原因是使激子能够在主体中解离。因此,即使在能量偏移很小或几乎没有能量偏移的器件(包括纯材料)中,电荷产生也可以是高效的。我们的研究结果表明,改善电荷分离动力学的潜在量子力学效应是由激子和电荷转移特性的杂化态介导的离域态之间更快且距离更远的跳跃。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1cae/10967019/10b736917b05/d3sc05409h-f1.jpg

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