Coden Maurizio, De Checchi Pietro, Fresch Barbara
Department of Chemical Sciences, Università degli Studi di Padova, Via Marzolo 1, 35131 Padova, Italy.
Nanoscale. 2020 Sep 17;12(35):18124-18136. doi: 10.1039/d0nr05601d.
Delocalization of excitons promoted by electronic coupling between clusters or quantum dots (QD) changes the dynamical processes in nanostructured aggregates enhancing energy transport. A spectroscopic shift of the absorption spectrum upon QD aggregation is commonly observed and ascribed to quantum mechanical coupling between neighbouring dots but also to exciton delocalization over the sulphur-based ligand shell or to other mechanisms as a change in the dielectric constant of the surrounding medium. We address the question of electronic coupling and exciton delocalization in nanocrystal aggregates by performing all-atom electronic structure calculations in models of colloidal QD dimers. The relation between spectral shift, interdot coupling and exciton delocalization is investigated in atomistic detail in models of dimers formed by CdSe clusters kept together by bridging organic ligands. Our results support the possibility of obtaining exciton delocalization over the dimer and point out the crucial role of the bridging ligand in enhancing interdot electronic coupling.
团簇或量子点(QD)之间的电子耦合促进了激子的离域化,改变了纳米结构聚集体中的动力学过程,增强了能量传输。量子点聚集时吸收光谱的光谱位移是常见的,这归因于相邻量子点之间的量子力学耦合,也归因于激子在硫基配体壳层上的离域化,或者归因于其他机制,如周围介质介电常数的变化。我们通过在胶体量子点二聚体模型中进行全原子电子结构计算,来解决纳米晶体聚集体中的电子耦合和激子离域化问题。在由桥连有机配体连接在一起的CdSe团簇形成的二聚体模型中,从原子层面详细研究了光谱位移、量子点间耦合和激子离域化之间的关系。我们的结果支持了在二聚体上实现激子离域化的可能性,并指出了桥连配体在增强量子点间电子耦合方面的关键作用。