Spectroscopy of Wigner crystal polarons in an atomically thin semiconductor
Abstract
Strongly interacting electrons in two-dimensional systems can spontaneously break translational symmetry, forming a periodic Wigner crystal. Although these crystals have been realized in several platforms, experimental studies of their collective many-body excitations in the absence of a magnetic field remain an outstanding challenge. Here, we access this regime optically by uncovering Wigner crystal polarons: novel light-matter excitations arising from the dressing of excitons by collective excitations of the Wigner crystal. These hybrid quasiparticles manifest as new optical resonances in cryogenic reflectance spectra of a charge-tunable WSe monolayer, appearing concurrently with previously identified exciton umklapp transitions. In contrast to the latter, the energies of Wigner crystal polarons are governed not only by the electronic lattice constant but also by their hybridization with attractive exciton-polarons, whose strength is controlled by electronic interactions. These novel many-body excitations provide an optical interface to the spin state of the Wigner crystal, which as we demonstrate, can be controlled both magnetically and optically. Our work establishes layered materials as a unique platform for exploring dynamical impurity dressing by strongly correlated electronic orders.
Keywords
Cite
@article{arxiv.2512.16552,
title = {Spectroscopy of Wigner crystal polarons in an atomically thin semiconductor},
author = {L. Wang and F. Menzel and F. Pichler and P. Knüppel and K. Watanabe and T. Taniguchi and M. Knap and T. Smoleński},
journal= {arXiv preprint arXiv:2512.16552},
year = {2025}
}
Comments
Main text: 7 pages, 4 figures; Methods: 8 pages (+ 11 extended data figures)