Ultrafast Dynamics of Bloch Surface Wave Polaritons in Large‐Area 2D Semiconductor Monolayers at Room Temperature

Author:

Liu Bin1,Michail Evripidis23,He Guiying23,Sfeir Matthew Y.23,Forrest Stephen R.145ORCID

Affiliation:

1. Department of Electrical Engineering and Computer Science University of Michigan Ann Arbor MI 48109 USA

2. Department of Physics Graduate Center City University of New York New York NY 10016 USA

3. Photonics Initiative Advanced Science Research Center City University of New York New York NY 10031 USA

4. Department of Physics University of Michigan Ann Arbor MI 48109 USA

5. Department of Materials Science and Engineering University of Michigan Ann Arbor MI 48109 USA

Abstract

AbstractThe dynamics of strongly coupled polariton systems integrated with 2D transition metal dichalcogenides (TMDs) is key to enabling efficient coherent processes and achieving high‐performance TMD‐based polaritonic devices, such as ultralow‐threshold polariton lasers and ultrafast optical switches. However, there has been a lack of a comprehensive understanding of the excited state dynamics in TMD‐based polariton systems. In this work, ultrafast pump‐probe optical spectroscopy is used to investigate the room temperature dynamics of the polariton systems consisting of TMD monolayer excitons strongly coupled with Bloch surface waves (BSWs) supported by all‐dielectric photonic structures. The transient response is found for both above‐exciton energy pumping and polariton‐resonant pumping. The excited state population and ultrafast coherent coupling of the exciton reservoir and lower polariton (LP) branch are observed for resonant pumping. Moreover, it is found that the transient response of the LP first decays on a short‐time scale of 0.15–0.25 ps compared to the calculated intrinsic lifetime of 0.11–0.20 ps, and is followed by a longer decay (>100 ps) due to the dynamical evolution of the exciton reservoir. The results provide a fundamental understanding of the dynamics of TMD‐based polariton systems while showing the potential for achieving efficient coherent optical processes for device applications.

Funder

Army Research Office

Gordon and Betty Moore Foundation

Publisher

Wiley

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