Electronic rotons and Wigner crystallites in a two-dimensional dipole liquid
Soobin Park, Minjae Huh, Chris Jozwiak, Eli Rotenberg, Aaron Bostwick, Keun Su Kim

TL;DR
This paper reports the first observation of electronic rotons in a two-dimensional dipole liquid, revealing their role in Wigner crystallization and strong correlations in a novel material system.
Contribution
It provides experimental evidence of electronic rotons in a 2D dipole liquid and links their behavior to Wigner crystallization and strong correlation effects.
Findings
Observation of aperiodic roton dispersion with a local energy minimum.
Roton gap reduces to zero signaling Wigner crystallization.
Short-range order from dipole repulsion leads to Wigner crystallites.
Abstract
A key concept proposed by Landau to explain superfluid liquid helium is the elementary excitation of quantum particles called rotons. The irregular arrangement of atoms in a liquid forms the aperiodic dispersion of rotons that played a pivotal role in understanding fractional quantum Hall liquid (magneto-rotons) and the supersolidity of Bose-Einstein condensates. Even for a two-dimensional electron or dipole liquid in the absence of a magnetic field, their repulsive interactions were predicted to form a roton minimum that can be used to trace the transition to Wigner crystals and superconductivity, but it has not been observed. Here, we report the observation of such electronic rotons in a two-dimensional dipole liquid of alkali-metal ions doping charges to surface layers of black phosphorus. Our data reveal a striking aperiodic dispersion of rotons characterized by a local minimum of…
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