Wang Chunrui, Shao Junfeng, Chen Fei, Sheng Xiaowei
State Key Laboratory of Laser Interaction with Matter, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences Changchun 130033 China.
Anhui Province Key Laboratory of Optoelectric Materials Science and Technology, Anhui Laboratory of Molecule-Based Materials, The Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Normal University Wuhu 241000 Anhui China
RSC Adv. 2020 Jul 27;10(47):28066-28074. doi: 10.1039/d0ra01612h.
The mechanism for zinc phthalocyanine (ZnPc) showing optical-limiting character is related to the first singlet excited-state absorption (ESA). Two distinct band peaks in this ESA spectrum (1.97 eV and 2.56 eV) were observed in experiments. However, the origin of the absorption is not well understood. In the present work, we perform accurate quantum mechanical calculations and analysis of the absorption of ZnPc in the first singlet excited state. It is found that the transitions of S → S and S → S are the origin of the first and second band peaks, respectively. Charge transfer character is observed between the edges and central parts of ZnPc for those two transitions, but occurs in opposite directions. It is gratifying to note that the absorption can be modified smoothly through the substitution of nitrogen atoms in ZnPc with methyne or benzene rings. The aggregation phenomenon is also investigated with ZnPc dimers. The present calculations show that the absorptions of two ZnPc molecules with cofacially stacked and slightly shifted cofacially stacked configurations both result in an obvious blueshift compared with the zinc phthalocyanine monomer. The present observations may be utilized in tuning the optical-limiting character of ZnPc.
酞菁锌(ZnPc)呈现光学限幅特性的机制与第一单重激发态吸收(ESA)有关。实验中观察到该ESA光谱中有两个不同的谱带峰(1.97 eV和2.56 eV)。然而,这种吸收的起源尚未得到很好的理解。在本工作中,我们对酞菁锌在第一单重激发态的吸收进行了精确的量子力学计算和分析。结果发现,S→S和S→S跃迁分别是第一和第二谱带峰的起源。对于这两种跃迁,在酞菁锌的边缘和中心部分之间观察到了电荷转移特性,但方向相反。值得欣慰的是,通过用次甲基或苯环取代酞菁锌中的氮原子,可以平滑地改变吸收。还对酞菁锌二聚体的聚集现象进行了研究。目前的计算表明,与酞菁锌单体相比,具有面对面堆叠和稍微错开的面对面堆叠构型的两个酞菁锌分子的吸收都导致明显的蓝移。目前的观察结果可用于调节酞菁锌的光学限幅特性。