Optomechanical self-organization in a mesoscopic atom array
arXiv:2410.12754 · doi:10.1038/s41567-025-02916-7
Abstract
Increasing the number of particles in a system often leads to qualitative changes in its properties, such as breaking of symmetries and the appearance of phase transitions. This renders a macroscopic system fundamentally different from its individual microscopic constituents. Lying between these extremes, mesoscopic systems exhibit microscopic fluctuations that influence behavior on longer length scales, leading to critical phenomena and dynamics. Therefore, tracing the properties of well-controlled mesoscopic systems can help bridge the gap between an exact description of few-body microscopic systems and the emergent description of many-body systems. Here, we explore mesoscopic signatures of an optomechanical self-organization phase transition using arrays of cold atoms inside an optical cavity. By precisely engineering atom-cavity interactions, we reveal how critical behavior depends on atom number, identify characteristic dynamical behaviors in the self-organized regime, and observe a finite optomechanical susceptibility at the critical point. These findings advance our understanding of particle-number- and time-resolved properties of phase transitions in mesoscopic systems.
22 pages, 9 figures
References in corpus (7)
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Cold atoms in cavity-generated dynamical optical potentials
- Supersolid formation in a quantum gas breaking continuous translational symmetry
- Roton-type mode softening in a quantum gas with cavity-mediated long-range interactions
- Cavity-Modified Collective Rayleigh Scattering of Two Atoms
- Self-Organization Threshold Scaling for Thermal Atoms Coupled to a Cavity
- Fast single atom imaging for optical lattice arrays
Cited by in corpus (6)
- Master Equation for a Quantum Gas of Polarizable Particles in Cavities
- Observing the dynamics of octupolar structural transitions in trapped-ion clusters
- Higher symmetry breaking and non-reciprocity in a driven-dissipative Dicke model
- Microscopy of cavity-induced density-wave ordering in ultracold gases
- Dissipative Generation of Currents by Nonreciprocal Local and Global Environments
- Observation of universal non-Gaussian statistics of the order parameter across a continuous phase transition