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准分子介导的金属氧化物上自组装供体-受体染料的分子间电荷转移

Excimer-Mediated Intermolecular Charge Transfer in Self-Assembled Donor-Acceptor Dyes on Metal Oxides.

作者信息

Yu Yongze, Chien Szu-Chia, Sun Jiaonan, Hettiaratchy Elline C, Myers Roberto C, Lin Li-Chiang, Wu Yiying

机构信息

Department of Chemistry and Biochemistry , The Ohio State University , Columbus , Ohio 43210 , United States.

Department of Materials Science and Engineering , The Ohio State University , Columbus , Ohio 43210 , United States.

出版信息

J Am Chem Soc. 2019 Jun 5;141(22):8727-8731. doi: 10.1021/jacs.9b03729. Epub 2019 May 22.

Abstract

When conjugate molecules are self-assembled on the surface of semiconductors, emergent properties resulting from the electronic coupling between the conjugate moieties are of importance in the interfacial electron-transfer dynamics for photoelectrochemical and optoelectronics devices. In this work, we investigate the self-assembly of triphenylamine-oligothiophene-perylenemonoimide (PMI) molecules, denoted as BH4, on metal oxide surfaces via UV-vis absorption, photoluminescence, and transient near-infrared absorption spectroscopies and molecular dynamics simulations, and we report the excimer formation due to the π-π interaction of the PMI units between the neighboring dye molecules. To our best knowledge, this is the first experimental observation of intermolecular excimer formation when conjugate donor-acceptor molecules form a self-assembled monolayer. In addition, a long-lived (4.3 μs) intermolecular charge separation is observed, and a new excimer-mediated intermolecular charger-transfer mechanism is proposed. This work demonstrates that, through the design of dye molecules, the excited complexes or aggregates can provide a pathway to slow down the recombination rate in photoelectrodes that utilize donor-acceptor dyad molecules.

摘要

当共轭分子在半导体表面自组装时,共轭部分之间的电子耦合所产生的新兴特性对于光电化学和光电器件的界面电子转移动力学至关重要。在这项工作中,我们通过紫外可见吸收光谱、光致发光光谱和瞬态近红外吸收光谱以及分子动力学模拟,研究了三苯胺 - 寡噻吩 - 苝单酰亚胺(PMI)分子(记为BH4)在金属氧化物表面的自组装,并报道了相邻染料分子之间PMI单元的π-π相互作用导致的激基缔合物形成。据我们所知,这是共轭供体 - 受体分子形成自组装单分子层时分子间激基缔合物形成的首次实验观察。此外,还观察到了长寿命(4.3微秒)的分子间电荷分离,并提出了一种新的激基缔合物介导的分子间电荷转移机制。这项工作表明,通过染料分子的设计,激发态复合物或聚集体可以为利用供体 - 受体二元分子的光电极中的复合速率减缓提供一条途径。

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