Orientational melting in a mesoscopic system of charged particles
- URL: http://arxiv.org/abs/2209.00395v1
- Date: Thu, 1 Sep 2022 12:17:33 GMT
- Title: Orientational melting in a mesoscopic system of charged particles
- Authors: Lucia Duca, Naoto Mizukami, Elia Perego, Massimo Inguscio, Carlo Sias
- Abstract summary: A mesoscopic system of a few particles exhibits behaviors that strongly differ from those of a macroscopic system.
A transition that has no counterpart in the macroscopic world is orientational melting.
We quantitatively characterize orientational melting, and compare the results with a Monte Carlo simulation to extract the particles kinetic energy.
We demonstrate the existence of magic numbers, and control locally the occurrence of melting by adding a pinning impurity.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: A mesoscopic system of a few particles exhibits behaviors that strongly
differ from those of a macroscopic system. While in a macroscopic system phase
transitions are universal, a change in the state of a mesoscopic system depends
on its specific properties, like the number of particles, to the point that
changes of state can be disfavored for specific magic numbers. A transition
that has no counterpart in the macroscopic world is orientational melting, in
which localized particles with long-range repulsive interactions forming a
two-dimensional crystal become delocalized in common circular or elliptical
trajectories. Orientational melting has been studied extensively with computer
simulations and witnessed in a few pioneering experiments. However, a detailed
experimental investigation fully revealing its non-universal nature has been
missing so far. Here we report the observation of orientational melting in a
two-dimensional ensemble of up to 15 ions with repulsive Coulomb interaction.
We quantitatively characterize orientational melting, and compare the results
with a Monte Carlo simulation to extract the particles kinetic energy. We
demonstrate the existence of magic numbers, and control locally the occurrence
of melting by adding a pinning impurity. Our system realizes a
fully-controllable experimental testbed for studying the thermodynamics of
small systems, and our results pave the way for the study of quantum phenomena
in systems of delocalized ions, from the emergence of quantum fluctuations and
quantum statistics, to the control of multi-shell quantum rotors.
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