Zhu Hongjuan, Zhang Danyang, Feng Eryin, Sheng Xiaowei
Anhui Province Key Laboratory of Optoelectric Materials Science and Technology, Department of Physics, Anhui Normal University, Anhui, Wuhu 241000, China.
Phys Chem Chem Phys. 2023 Apr 12;25(15):10278-10287. doi: 10.1039/d2cp04372f.
In the present paper, the aggregated structures of zinc phthalocyanine (ZnPc) have been investigated by considering its dimers and trimers. Based on the density functional theory calculations, two stable conformations are obtained for the ZnPc dimer and trimer, respectively. The IGMH (independent gradient model based on the Hirshfeld partition of molecular density) analysis reveals that the π-π interaction between the ZnPc molecules causes the aggregation. Normally, stacked structures with a slight displacement are favorable for aggregation. In addition, the planar structure of the ZnPc monomer is largely maintained in the aggregated conformations. For the presently obtained structures, the first singlet excited state absorption (ESA) spectra of these aggregated conformations of ZnPc were calculated based on the linear-response time-dependent density functional theory (LR-TDDFT), which has been well applied by our group. The results of the excited state absorption spectra reveal that the aggregation causes the ESA band to blue shift compared to the ZnPc monomer. By using the conventional description of the interaction between monomer transition dipoles, this blue shift is elucidated by the side-by-side transition dipole moments in the constituted monomers. The present results for the ESA combined with the previously reported results for ground state absorption (GSA) will provide guidelines to tune the window of the optical-limiting effect for the ZnPc based materials.
在本文中,通过考虑酞菁锌(ZnPc)的二聚体和三聚体来研究其聚集结构。基于密度泛函理论计算,分别获得了ZnPc二聚体和三聚体的两种稳定构象。IGMH(基于分子密度的Hirshfeld划分的独立梯度模型)分析表明,ZnPc分子之间的π-π相互作用导致了聚集。通常,具有轻微位移的堆叠结构有利于聚集。此外,ZnPc单体的平面结构在聚集构象中基本得以保持。对于目前得到的结构,基于线性响应含时密度泛函理论(LR-TDDFT)计算了这些ZnPc聚集构象的第一单重激发态吸收(ESA)光谱,该理论已被本研究团队很好地应用。激发态吸收光谱的结果表明,与ZnPc单体相比,聚集导致ESA带发生蓝移。通过使用单体跃迁偶极矩之间相互作用的传统描述,这种蓝移可以由构成单体中的并排跃迁偶极矩来解释。目前关于ESA的结果与先前报道的基态吸收(GSA)结果相结合,将为调节基于ZnPc的材料的光限效应窗口提供指导。