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Trapped Ion Quantum Computing

Collective optical properties of moiré excitons

arXiv
Authors: Tsung-Sheng Huang, Yu-Xin Wang, Yan-Qi Wang, Darrick Chang, Mohammad Hafezi, Andrey Grankin

Year

2024

Paper ID

64908

Status

Preprint

Abstract Read

~2 min

Abstract Words

135

Citations

N/A

Abstract

We propose that excitons in moiré transition metal dichalcogenide bilayers offer a promising platform for investigating collective radiative properties. While some of these optical properties resemble those of cold atom arrays, moiré excitons extend to the deep subwavelength limit, beyond the reach of current optical lattice experiments. Remarkably, we show that the collective optical properties can be exploited to probe certain correlated electron states without requiring subwavelength spatial resolution. Specifically, we illustrate that the Wigner crystal states of electrons doped into these bilayers act as an emergent periodic potential for excitons. Moreover, the collective dissipative excitonic bands and their associated Berry curvature can reveal various charge orders that emerge at the corresponding electronic doping. Our study provides a promising pathway for future research on the interplay between collective effects and strong correlations involving moiré excitons.

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  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
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  • We propose that excitons in moiré transition metal dichalcogenide bilayers offer a promising platform for investigating collective radiative properties.

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