One- and Two-Photon Photophysical Properties, Ultrafast Dynamics, and DFT Study of Three Modified Zinc Phthalocyanines

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Ding Zhang, Yaochuan Wang*, Xiangxu Meng, Haoran Ni, Yizhuo Wang, Dajun Liu, Guiqiu Wang and Yu Chen*, 
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Abstract

As two-photon absorption (TPA) materials, phthalocyanine molecules have promising application prospects due to their large TPA absorption cross-section, high third-order nonlinear optical susceptibility, and ultrafast response characteristics. In this work, optical properties and the ultrafast response of three modified zinc phthalocyanine molecules (P-HPcZn, Pc-P-Pc, and (DR1)4PcZn) were analyzed. No obvious side-shoulder absorption peaks in the Q-band can be observed from the steady-state absorption spectra of the three molecules, confirming the lack of aggregation products in the solutions of our measurement. Open-aperture Z-scan results show relatively large TPA cross-section values of 136.4 and 55.3 GM for Pc-P-Pc and (DR1)4PcZn, respectively. The nonlinear optical results show that the absorption process observed under the excitation of femtosecond pulses is a reverse saturable absorption (RSA) mechanism. Up-conversion fluorescence spectra of (DR1)4PcZn in THF solution indicate that the fluorescence emission mechanism is TPA. In the study of ultrafast dynamics, the transient absorption spectra were investigated and the decay lifetime of the dynamic traces corresponding to some representative probe wavelengths was obtained through data fitting with a multi-exponential function. Finally, the charge transfer and excited state properties of the modified zinc phthalocyanine molecules were discussed in depth by the DFT method. The energy gaps of P-HPcZn, Pc-P-Pc, and (DR1)4PcZn are 2.16, 1.39, and 2.13 eV, respectively. The results indicate that the Pc-P-Pc of donor–acceptor–donor (D-A-D) structure has the smallest energy gap as well as the best charge transfer properties.

Abstract Image

三种改性酞菁锌的单、双光子光物理性质、超快动力学和 DFT 研究
作为双光子吸收(TPA)材料,酞菁分子具有较大的 TPA 吸收截面、较高的三阶非线性光学感性和超快响应特性,因此具有广阔的应用前景。本研究分析了三种改性酞菁锌分子(P-HPcZn、Pc-P-Pc 和 (DR1)4PcZn)的光学特性和超快响应。从这三种分子的稳态吸收光谱中看不到明显的 Q 波段侧肩吸收峰,这证实了在我们测量的溶液中没有聚集产物。开孔 Z 扫描结果显示,Pc-P-Pc 和 (DR1)4PcZn 的 TPA 截面值相对较大,分别为 136.4 GM 和 55.3 GM。非线性光学结果表明,在飞秒脉冲激发下观察到的吸收过程是一种反向可饱和吸收(RSA)机制。(DR1)4PcZn在THF溶液中的上转换荧光光谱表明其荧光发射机制为TPA。在超快动力学研究中,研究了瞬态吸收光谱,并通过多指数函数进行数据拟合,得到了一些代表性探针波长对应的动态迹线的衰减寿命。最后,利用 DFT 方法深入讨论了修饰酞菁锌分子的电荷转移和激发态特性。P-HPcZn、Pc-P-Pc 和 (DR1)4PcZn 的能隙分别为 2.16、1.39 和 2.13 eV。结果表明,供体-受体-供体(D-A-D)结构的 Pc-Pc 的能隙最小,电荷转移性能最好。
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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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