Strong Exciton-Photon Coupling in Large Area MoSe$_2$ and WSe$_2$ Heterostructures Fabricated from Two-Dimensional Materials Grown by Chemical Vapor Deposition
Daniel J. Gillard, Armando Genco, Seongjoon Ahn, Thomas P. Lyons,, Kyung Yeol Ma, A-Rang Jang, Toby Severs Millard, Aurelien A. P. Trichet,, Rahul Jayaprakash, Kyriacos Georgiou, David G. Lidzey, Jason M. Smith, Hyeon, Suk Shin, Alexander I. Tartakovskii

TL;DR
This paper demonstrates scalable fabrication of large-area transition metal dichalcogenide heterostructures via chemical vapor deposition that exhibit strong exciton-photon coupling, enabling potential polaritonic devices at various temperatures.
Contribution
It introduces a scalable CVD method to produce large-area TMD/hBN heterostructures with high optical quality capable of strong coupling in microcavities.
Findings
Strong exciton-photon coupling observed in CVD-grown heterostructures.
High optical quality comparable to exfoliated samples.
Operation demonstrated down to 4 Kelvin in microcavities.
Abstract
Two-dimensional semiconducting transition metal dichalcogenides embedded in optical microcavities in the strong exciton-photon coupling regime may lead to promising applications in spin and valley addressable polaritonic logic gates and circuits. One significant obstacle for their realization is the inherent lack of scalability associated with the mechanical exfoliation commonly used for fabrication of two-dimensional materials and their heterostructures. Chemical vapor deposition offers an alternative scalable fabrication method for both monolayer semiconductors and other two-dimensional materials, such as hexagonal boron nitride. Observation of the strong light-matter coupling in chemical vapor grown transition metal dichalcogenides has been demonstrated so far in a handful of experiments with monolayer molybdenum disulfide and tungsten disulfide. Here we instead demonstrate the…
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Taxonomy
TopicsStrong Light-Matter Interactions · 2D Materials and Applications · Perovskite Materials and Applications
