Portone Alberto, Ganzer Lucia, Branchi Federico, Ramos Rodrigo, Caldas Marília J, Pisignano Dario, Molinari Elisa, Cerullo Giulio, Persano Luana, Prezzi Deborah, Virgili Tersilla
Dipartimento di Matematica e Fisica "Ennio De Giorgi", Università del Salento, Via Arnesano I-73100, Lecce, Italy.
NEST, Istituto Nanoscienze-CNR and Scuola Normale Superiore, Piazza S. Silvestro 12, I-56127, Pisa, Italy.
Sci Rep. 2019 May 14;9(1):7370. doi: 10.1038/s41598-019-43719-0.
Polythiophenes are the most widely utilized semiconducting polymers in organic electronics, but they are scarcely exploited in photonics due to their high photo-induced absorption caused by interchain polaron pairs, which prevents the establishment of a window of net optical gain. Here we study the photophysics of poly(3-hexylthiophene) configured with different degrees of supramolecular ordering, spin-coated thin films and templated nanowires, and find marked differences in their optical properties. Transient absorption measurements evidence a partially-polarized stimulated emission band in the nanowire samples, in contrast with the photo-induced absorption band observed in spin-coated thin films. In combination with theoretical modeling, our experimental results reveal the origin of the primary photoexcitations dominating the dynamics for different supramolecular ordering, with singlet excitons in the nanostructured samples superseding the presence of polaron pairs, which are present in the disordered films. Our approach demonstrates a viable strategy to direct optical properties through structural control, and the observation of optical gain opens the possibility to the use of polythiophene nanostructures as building blocks of organic optical amplifiers and active photonic devices.
聚噻吩是有机电子学中应用最广泛的半导体聚合物,但由于链间极化子对导致的高光致吸收,它们在光子学领域几乎未得到充分利用,这阻碍了净光学增益窗口的建立。在此,我们研究了具有不同超分子有序度的聚(3 - 己基噻吩)的光物理性质,包括旋涂薄膜和模板化纳米线,并发现它们的光学性质存在显著差异。瞬态吸收测量表明,纳米线样品中存在部分偏振的受激发射带,这与旋涂薄膜中观察到的光致吸收带形成对比。结合理论建模,我们的实验结果揭示了主导不同超分子有序度动力学的主要光激发的起源,纳米结构样品中的单线态激子取代了无序薄膜中存在的极化子对。我们的方法展示了一种通过结构控制来调控光学性质的可行策略,并且光学增益的观察为将聚噻吩纳米结构用作有机光放大器和有源光子器件的构建块开辟了可能性。