Abstract

Manipulation of light-matter interaction is critical in modern physics, especially in the strong coupling regime, where the generated half-light, half-matter bosonic quasiparticles as polaritons are important for fundamental quantum science and applications of optoelectronics and nonlinear optics. Two-dimensional transition metal dichalcogenides (TMDs) are ideal platforms to investigate the strong coupling because of their huge exciton binding energy and large absorption coefficients. Further studies on strong exciton-plasmon coupling by combining TMDs with metallic nanostructures have generated broad interests in recent years. However, because of the huge plasmon radiative damping, the observation of strong coupling is significantly limited at room temperature. Here, we demonstrate that a large Rabi splitting (~300 meV) can be achieved at ambient conditions in the strong coupling regime by embedding Ag-WS<sub>2</sub> heterostructure in an optical microcavity. The generated quasiparticle with part-plasmon, part-exciton and part-light is analyzed with Hopfield coefficients that are calculated by using three-coupled oscillator model. The resulted plasmon-exciton polaritonic hybrid states can efficiently enlarge the obtained Rabi splitting, which paves the way for the practical applications of polaritonic devices based on ultrathin materials.

Highlights

  • Strong light-matter coupling is crucial for the modern physics, including semiconductor optoelectronics, plasmonics, ultrafast optics, and quantum electrodynamics, etc

  • We demonstrate the hybrid states of optical cavity and plasmonic nanostructure can be further coupled with the exciton of WS2 monolayers, and generate a new kind of quasiparticle with part-plasmon, part-exciton and part-light

  • Ag nanodisks were fabricated on the WS2 monolayer by using E-beam lithography (EBL) and the following lift-off process

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Summary

Introduction

Strong light-matter coupling is crucial for the modern physics, including semiconductor optoelectronics, plasmonics, ultrafast optics, and quantum electrodynamics, etc. We report for the first time the observation of strong coupled plasmon-exciton polaritonic hybrid states by embedding Ag-WS2 heterostructure in an optical microcavity under ambient conditions.

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