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π-连接体在调节用于太阳能电池应用的三苯胺衍生物的光电性质中的作用——一项密度泛函理论/含时密度泛函理论研究

The role of π-linkers in tuning the optoelectronic properties of triphenylamine derivatives for solar cell applications - A DFT/TDDFT study.

作者信息

Panneerselvam Murugesan, Kathiravan Arunkumar, Solomon Rajadurai Vijay, Jaccob Madhavan

机构信息

Department of Chemistry, Loyola College, Chennai-600 034, Tamil Nadu, India and Computational Chemistry Laboratory, Loyola Institute of Frontier Energy (LIFE), Loyola College, Chennai-600 034, Tamil Nadu, India.

National Centre for Ultrafast Processes, University of Madras, Taramani Campus, Chennai-600 113, Tamil Nadu, India.

出版信息

Phys Chem Chem Phys. 2017 Feb 22;19(8):6153-6163. doi: 10.1039/c6cp07768d.

Abstract

A recently reported triphenylamine (TPA) group in conjugation with a benzothiadiazole (BTD) moiety opens up the possibility for designing new organic sensitizers for solar cell applications that are amenable for structural tuning. Hence, seven new TPA molecules were designed from two experimentally reported molecules. The optoelectronic properties, including the absorption and emission spectra of the TPA derivatives, were studied via density functional theory (DFT) and time-dependent density functional theory (TDDFT) methods. Different π-linkers were screened to understand the role of π-linkers in altering the optoelectronic properties of these molecules. Our results show that furan moieties bring planarity to the molecule and show reduced HOMO-LUMO gaps. All these molecules show excellent delocalization of π-electrons. TDDFT calculations show that furan-substituted TPA (TPA9) has the highest absorption maxima. Interestingly, the thiophene-substituted TPA (TPA7) was found to have a high emission maxima as it achieved planarity in the excited state. There is an excellent correlation observed between the computed optoelectronic properties and calculated HOMO-LUMO gaps. Overall, this study throws light on the role of π-linkers in the photophysical properties of TPA derivatives and provides useful clues in designing new molecules for optoelectronic applications.

摘要

最近报道的一种与苯并噻二唑(BTD)部分共轭的三苯胺(TPA)基团,为设计适用于结构调整的太阳能电池应用新型有机敏化剂开辟了可能性。因此,从两个实验报道的分子设计了七种新型TPA分子。通过密度泛函理论(DFT)和含时密度泛函理论(TDDFT)方法研究了TPA衍生物的光电性质,包括吸收光谱和发射光谱。筛选了不同的π-连接体,以了解π-连接体在改变这些分子光电性质中的作用。我们的结果表明,呋喃部分使分子具有平面性,并显示出减小的HOMO-LUMO能隙。所有这些分子都表现出优异的π电子离域。TDDFT计算表明,呋喃取代的TPA(TPA9)具有最高的吸收最大值。有趣的是,发现噻吩取代的TPA(TPA7)在激发态实现平面性时具有较高的发射最大值。在计算的光电性质和计算的HOMO-LUMO能隙之间观察到极好的相关性。总体而言,本研究揭示了π-连接体在TPA衍生物光物理性质中的作用,并为设计用于光电应用的新分子提供了有用线索。

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