Title: Engineering radiative coupling of excitons in 2D semiconductors
Authors: Horng, Jason
Chou, Yu-Hsun
Chang, Tsu-Chi
Hsu, Chu-Yuan
Lu, Tien-Chang
Deng, Hui
光電工程學系
Department of Photonics
Issue Date: 20-Nov-2019
Abstract: The resonance energy and the transition rate of atoms, molecules, and solids were understood as their intrinsic properties in classical electromagnetism. It was later realized that these quantities are linked to the radiative coupling between the transition dipole and photon modes. Such effects can be greatly amplified in macroscopic many-body systems from virtual photon exchange between dipoles, but are often masked by inhomogeneity and pure dephasing, especially in solids. Here, we observe in both absorption and emission spectroscopy the renormalization of the exciton resonance and the radiative decay rate in transition metal dichalcogenides monolayers due to their radiative interactions. Tuning the photon mode density near the monolayer, we demonstrate control of cooperative Lamb shift, radiative decay, and valley polarization of the excitons as well as control of the charged exciton emission. Our work establishes a technologically accessible and robust experimental system for engineering cooperative matter-light interactions. (c) 2019 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
URI: http://dx.doi.org/10.1364/OPTICA.6.001443
http://hdl.handle.net/11536/153393
ISSN: 2334-2536
DOI: 10.1364/OPTICA.6.001443
Journal: OPTICA
Volume: 6
Issue: 11
Begin Page: 1443
End Page: 1448
Appears in Collections:Articles