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无序有机半导体的通用乌尔巴赫规则。

A universal Urbach rule for disordered organic semiconductors.

作者信息

Kaiser Christina, Sandberg Oskar J, Zarrabi Nasim, Li Wei, Meredith Paul, Armin Ardalan

机构信息

Sustainable Advanced Materials (Sêr-SAM), Department of Physics, Swansea University, Singleton Park, Swansea, UK.

出版信息

Nat Commun. 2021 Jun 28;12(1):3988. doi: 10.1038/s41467-021-24202-9.

Abstract

In crystalline semiconductors, absorption onset sharpness is characterized by temperature-dependent Urbach energies. These energies quantify the static, structural disorder causing localized exponential-tail states, and dynamic disorder from electron-phonon scattering. Applicability of this exponential-tail model to disordered solids has been long debated. Nonetheless, exponential fittings are routinely applied to sub-gap absorption analysis of organic semiconductors. Herein, we elucidate the sub-gap spectral line-shapes of organic semiconductors and their blends by temperature-dependent quantum efficiency measurements. We find that sub-gap absorption due to singlet excitons is universally dominated by thermal broadening at low photon energies and the associated Urbach energy equals the thermal energy, regardless of static disorder. This is consistent with absorptions obtained from a convolution of Gaussian density of excitonic states weighted by Boltzmann-like thermally activated optical transitions. A simple model is presented that explains absorption line-shapes of disordered systems, and we also provide a strategy to determine the excitonic disorder energy. Our findings elaborate the meaning of the Urbach energy in molecular solids and relate the photo-physics to static disorder, crucial for optimizing organic solar cells for which we present a revisited radiative open-circuit voltage limit.

摘要

在晶体半导体中,吸收起始锐度由与温度相关的乌尔巴赫能量来表征。这些能量量化了导致局域指数尾态的静态结构无序以及电子 - 声子散射引起的动态无序。这种指数尾模型对无序固体的适用性长期以来一直存在争议。尽管如此,指数拟合仍常规应用于有机半导体的亚带隙吸收分析。在此,我们通过与温度相关的量子效率测量来阐明有机半导体及其混合物的亚带隙光谱线形。我们发现,在低光子能量下,单重态激子引起的亚带隙吸收普遍受热展宽主导,且相关的乌尔巴赫能量等于热能,与静态无序无关。这与通过类似玻尔兹曼热激活光学跃迁加权的激子态高斯密度卷积得到的吸收一致。我们提出了一个简单模型来解释无序系统的吸收线形,并且还提供了一种确定激子无序能量的策略。我们的研究结果阐述了分子固体中乌尔巴赫能量的意义,并将光物理与静态无序联系起来,这对于优化有机太阳能电池至关重要,为此我们提出了一个重新审视的辐射开路电压极限。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/8238995/f0c3dc694355/41467_2021_24202_Fig1_HTML.jpg

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