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溶剂蒸气退火对高效小分子基太阳能电池开路电压降低的起源。

Origin of Reduced Open-Circuit Voltage in Highly Efficient Small-Molecule-Based Solar Cells upon Solvent Vapor Annealing.

机构信息

Institute of Polymer Optoelectronic Materials and Devices, State Key Laboratory of Luminescent Materials and Devices , South China University of Technology , Guangzhou 510640 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2018 Mar 7;10(9):8141-8147. doi: 10.1021/acsami.7b17546. Epub 2018 Feb 22.

DOI:10.1021/acsami.7b17546
PMID:29411601
Abstract

In this study, we demonstrate that remarkably reduced open-circuit voltage in highly efficient organic solar cells (OSCs) from a blend of phenyl-C-butyric acid methyl ester and a recently developed conjugated small molecule (DPPEZnP-THD) upon solvent vapor annealing (SVA) is due to two independent sources: increased radiative recombination and increased nonradiative recombination. Through the measurements of electroluminescence due to the emission of the charge-transfer state and photovoltaic external quantum efficiency measurement, we can quantify that the open-circuit voltage losses in a device with SVA due to the radiative recombination and nonradiative recombination are 0.23 and 0.31 V, respectively, which are 0.04 and 0.07 V higher than those of the as-cast device. Despite of the reduced open-circuit voltage, the device with SVA exhibited enhanced dissociation of charge-transfer excitons, leading to an improved short-circuit current density and a remarkable power conversion efficiency (PCE) of 9.41%, one of the best for solution-processed OSCs based on small-molecule donor materials. Our study also clearly shows that removing the nonradiative recombination pathways and/or suppressing energetic disorder in the active layer would result in more long-lived charge carriers and enhanced open-circuit voltage, which are prerequisites for further improving the PCE.

摘要

在这项研究中,我们证明了在由苯丁酸甲酯和最近开发的共轭小分子(DPPEZnP-THD)组成的高效有机太阳能电池(OSC)中,经过溶剂蒸气退火(SVA)后,开路电压显著降低,这是由两个独立的来源造成的:辐射复合的增加和非辐射复合的增加。通过测量由于电荷转移态发射引起的电致发光和光伏外量子效率测量,我们可以量化出由于辐射复合和非辐射复合,SVA 器件中的开路电压损失分别为 0.23 和 0.31 V,比未经过 SVA 的器件分别高出 0.04 和 0.07 V。尽管开路电压降低了,但经过 SVA 的器件表现出了增强的电荷转移激子的离解,从而导致短路电流密度的提高和显著的功率转换效率(PCE)达到 9.41%,这是基于小分子给体材料的溶液处理 OSC 中最好的之一。我们的研究还清楚地表明,消除非辐射复合途径和/或抑制活性层中的能量无序,将导致更长寿命的电荷载流子和增强的开路电压,这是进一步提高 PCE 的前提条件。

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