Ziolek Robert M, Santana-Bonilla Alejandro, López-Ríos de Castro Raquel, Kühn Reimer, Green Mark, Lorenz Christian D
Biological Physics and Soft Matter Group, Department of Physics, King's College London, London WC2R 2LS, United Kingdom.
Department of Physics, King's College London, London WC2R 2LS, United Kingdom.
ACS Nano. 2022 Sep 27;16(9):14432-14442. doi: 10.1021/acsnano.2c04794. Epub 2022 Sep 14.
Conjugated polymers are employed in a variety of application areas due to their bright fluorescence and strong biocompatibility. However, understanding the structure of amorphous conjugated polymers on the nanoscale is extremely challenging compared to their related crystalline phases. Using a bespoke classical force field, we study amorphous poly(9,9-di--octylfluorene--benzothiadiazole) (F8BT) with molecular dynamics simulations to investigate the role that its nanoscale structure plays in controlling its emergent (and all-important) optical properties. Notably, we show that a giant percolating cluster exists within amorphous F8BT, which has ramifications in understanding the nature of interchain species that drive the quantum yield reduction and bathochromic shift observed in conjugated polymer-based devices and nanostructures. We also show that distinct conformations can be unravelled from within the disordered structure of amorphous F8BT using a two-stage machine learning protocol, highlighting a link between molecular conformation and ring stacking propensity. This work provides predictive understanding by which to enhance the optical properties of next-generation conjugated polymer-based devices and materials by rational, simulation-led design principles.
共轭聚合物因其明亮的荧光和强大的生物相容性而被应用于各种领域。然而,与相关的结晶相相比,了解非晶态共轭聚合物在纳米尺度上的结构极具挑战性。我们使用定制的经典力场,通过分子动力学模拟研究非晶态聚(9,9-二-辛基芴-苯并噻二唑)(F8BT),以探究其纳米尺度结构在控制其新兴(且至关重要)光学性质中所起的作用。值得注意的是,我们表明在非晶态F8BT中存在一个巨大的渗流团簇,这对于理解在基于共轭聚合物的器件和纳米结构中导致量子产率降低和红移的链间物种的性质具有重要意义。我们还表明,使用两阶段机器学习协议可以从非晶态F8BT的无序结构中解析出不同的构象,突出了分子构象与环堆积倾向之间的联系。这项工作提供了预测性的理解,通过合理的、以模拟为导向的设计原则来增强下一代基于共轭聚合物的器件和材料的光学性质。