| Literature DB >> 32453547 |
Ravindra Kumar Yadav1, Marc R Bourgeois2, Charles Cherqui2, Xitlali G Juarez3, Weijia Wang4, Teri W Odom4, George C Schatz2, Jaydeep Kumar Basu1.
Abstract
Colloidal quantum dot (CQD) assemblies exhibit interesting optoelectronic properties when coupled to optical resonators ranging from Purcell-enhanced emission to the emergence of hybrid electronic and photonic polariton states in the weak and strong coupling limits, respectively. Here, experiments exploring the weak-to-strong coupling transition in CQD-plasmonic lattice hybrid devices at room temperature are presented for varying CQD concentrations. To interpret these results, generalized retarded Fano-Anderson and effective medium models are developed. Individual CQDs are found to interact locally with the lattice yielding Purcell-enhanced emission. At high CQD densities, polariton states emerge as two-peak structures in the photoluminescence, with a third polariton peak, due to collective CQD emission, appearing at still higher CQD concentrations. Our results demonstrate that CQD-lattice plasmon devices represent a highly flexible platform for the manipulation of collective spontaneous emission using lattice plasmons, which could find applications in optoelectronics, ultrafast optical switches, and quantum information science.Entities:
Keywords: Purcell factor; lattice plasmons; polariton; quantum dot; strong coupling; surface lattice resonances
Year: 2020 PMID: 32453547 DOI: 10.1021/acsnano.0c02785
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881