Quadrupolar and dipolar phases of excitons in transition-metal dichalcogenide trilayer heterostructures

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Main Authors: Zimmerman, Michal, Podolsky, Daniel, Rapaport, Ronen, Gazit, Snir
Format: Preprint
Published: 2025
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author Zimmerman, Michal
Podolsky, Daniel
Rapaport, Ronen
Gazit, Snir
author_facet Zimmerman, Michal
Podolsky, Daniel
Rapaport, Ronen
Gazit, Snir
contents Recent experiments on trilayer transition-metal dichalcogenide heterostructures have revealed the rich behavior of dipolar excitons. Motivated by these experimental observations, we investigate the collective dynamics of planar quantum dipoles whose orientation fluctuates due to charge tunneling between the outer layers. Using large-scale quantum Monte Carlo simulations, we map out the low-temperature phase diagram as a function of experimentally tunable parameters. We uncover a diverse landscape of phases driven by dipolar correlations. Under strong dipole fluctuations, a quadrupolar superfluid emerges. Suppressing charge tunneling nucleates a droplet state stabilized by the attractive interaction between antiparallel dipoles. At high exciton densities, the system gives way to a partially fragmented condensate, characterized by competing quadrupolar and dipolar superfluid states. Furthermore, at a large exciton mass and high density, we find a staggered dipolar crystal. Our detailed study of the dependence of exciton energy shifts on an external electric field directly interprets existing experimental data and underscores the crucial role of the antiparallel dipolar configuration. Our results provide a guide for future experimental explorations of quantum phases of trilayer excitons.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15848
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quadrupolar and dipolar phases of excitons in transition-metal dichalcogenide trilayer heterostructures
Zimmerman, Michal
Podolsky, Daniel
Rapaport, Ronen
Gazit, Snir
Mesoscale and Nanoscale Physics
Quantum Gases
Strongly Correlated Electrons
Recent experiments on trilayer transition-metal dichalcogenide heterostructures have revealed the rich behavior of dipolar excitons. Motivated by these experimental observations, we investigate the collective dynamics of planar quantum dipoles whose orientation fluctuates due to charge tunneling between the outer layers. Using large-scale quantum Monte Carlo simulations, we map out the low-temperature phase diagram as a function of experimentally tunable parameters. We uncover a diverse landscape of phases driven by dipolar correlations. Under strong dipole fluctuations, a quadrupolar superfluid emerges. Suppressing charge tunneling nucleates a droplet state stabilized by the attractive interaction between antiparallel dipoles. At high exciton densities, the system gives way to a partially fragmented condensate, characterized by competing quadrupolar and dipolar superfluid states. Furthermore, at a large exciton mass and high density, we find a staggered dipolar crystal. Our detailed study of the dependence of exciton energy shifts on an external electric field directly interprets existing experimental data and underscores the crucial role of the antiparallel dipolar configuration. Our results provide a guide for future experimental explorations of quantum phases of trilayer excitons.
title Quadrupolar and dipolar phases of excitons in transition-metal dichalcogenide trilayer heterostructures
topic Mesoscale and Nanoscale Physics
Quantum Gases
Strongly Correlated Electrons
url https://arxiv.org/abs/2512.15848