
Aug 2026
Taking the pulse of an electron crystal
In earlier work, we showed that electrons can freeze into an orderly pattern known as a Wigner crystal (see Electrons crystallize!). A natural next question is how such a crystal actually behaves: how stiff it is, how much it trembles from quantum and thermal motion, and how it eventually melts. This has been hard to answer, because a crystal made entirely of electrons leaves almost no fingerprint that ordinary instruments can pick up.
In this work, we use light to create excitons (pairs of an electron and a ‘hole’) inside a semiconductor sheet only a few atoms thick. Surrounded by the electron crystal, each exciton slightly distorts the arrangement of electrons around it. As the exciton moves through the material, this distortion travels along with it, and the two together form a composite particle that we call a ‘Wigner polaron’. Wigner polarons act as tiny built-in probes: using them, we can measure the electron crystal’s stiffness and watch how it vibrates and melts, opening a new optical window into a state of matter made entirely of electrons.
The paper was published in Nature Physics and was carried out in collaboration with ETH Zurich, Brookhaven National Laboratory, and the University of Heidelberg. Coverage by Phys.org and Maryland Today.













