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Designing Small Molecule Organic Solar Cells with High Open-Circuit Voltage

机译:设计具有高开路电压的小分子有机太阳能电池

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摘要

Three extended 2,5-dithienylthiazolo[5,4-d]thiazole-based small molecule chromophores are prepared via a sustainable direct arylation approach and their physicochemical and optoelectrical material characteristics are analyzed toward integration in solution-processed bulk heterojunction organic photovoltaics. Efficient charge separation and high values of the charge transfer state energy are derived from sensitive ground and excited state absorption and photoluminescence measurements on blends of the thiazolo[5,4-d]thiazole-based electron donor components with the PC71BM fullerene acceptor. Upon implementation in organic solar cells, a maximum power conversion efficiency of 2.7% and particularly high open-circuit voltages (0.930.98 V) are observed, which are correlated to the charge transfer state energies as derived from photoluminescence, Fourier transform photocurrent spectroscopy and combined electrochemical and photophysical data. Furthermore, several loss processes at the origin of the modest short-circuit current densities and fill factors are elucidated.
机译:通过可持续的直接芳基化方法制备了三个扩展的2,5-二苯基噻唑烷[5,4-D]基于噻唑的小分子发色团,并分析其物理化学和光电材料特征,以整合在解决方案处理的体积处理体积的散装块异质结构有机光电电动机中。有效的电荷分离和电荷转移态能量的高值是从敏感的地面和激发态吸收和对基于PC71BM Fullerene受体的基于PC71BM的噻唑电子供体组件的混合物上的光致发光测量得出的。在有机太阳能电池中实施后,观察到最大功率转换效率为2.7%,尤其是高的开路电压(0.930.98 V),这与源自光致发光的电荷转移态能量相关,傅立叶转换型光电流光电流光谱和光电流光谱光谱和结合电化学和光物理数据。此外,阐明了适度的短路电流密度和填充因子的几个损失过程。

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