Probing False Vacuum Decay and Bubble Nucleation in a Rydberg Atom Array
arXiv:2512.04637 · doi:10.1103/kqzq-fnr4
Abstract
In quantum field theory (QFT), the "vacuum" is not just empty space but the lowest-energy state of a quantum field. If the energy landscape has multiple local minima, the local ground states are the false vacuum (FV) which can tunnel towards the global ground state (true vacuum, TV). This process exhibits signature akin to classical supercooled gas transitions and many-body tunneling in discrete quantum systems. Here, we study the FV decay and bubble nucleation in a Rydberg atom ring. The van-der-Waals interactions and individual-site addressability allow us to explore physics beyond the standard Ising model. We observe that the FV decay rate decreases exponentially with the inverse of the symmetry-breaking field, directly mirroring QFT predictions. Moreover, we demonstrate that even minor deviations from the ideal metastable state can cause a stark departure from this universal scaling law. Extending beyond short-time decay dynamics, we also examine resonant bubble nucleation, a feature distinctive to systems with discrete energy spectra. Our findings and methods open avenues for future studies of many-body tunneling in higher dimensions or more complex geometries.
References in corpus (35)
- Many-Body Physics with Ultracold Gases
- Quantum information with Rydberg atoms
- Probing many-body dynamics on a 51-atom quantum simulator
- Quantum many-body systems out of equilibrium
- Quantum Phases of Matter on a 256-Atom Programmable Quantum Simulator
- Classical simulation of infinite-size quantum lattice systems in one spatial dimension
- Light-cone-like spreading of correlations in a quantum many-body system
- Probing Topological Spin Liquids on a Programmable Quantum Simulator
- A short introduction to the Lindblad Master Equation
- Demonstration of multi-qubit entanglement and algorithms on a programmable neutral atom quantum computer
- Efficient numerical simulations with Tensor Networks: Tensor Network Python (TeNPy)
- Quantum Zeno dynamics: mathematical and physical aspects
- Computational Role of Multiqubit Tunneling in a Quantum Annealer
- Towards a theory of metastability in open quantum dynamics
- Continuous Symmetry Breaking in a Two-dimensional Rydberg Array
- Quantum simulation of a lattice Schwinger model in a chain of trapped ions
- False vacuum decay in quantum spin chains
- Analog Quantum Simulation of (1+1)D Lattice QED with Trapped Ions
- Simulating seeded vacuum decay in a cold atom system
- A direct approach to quantum tunneling
- Observation of false vacuum decay via bubble formation in ferromagnetic superfluids
- The universe on a table top: engineering quantum decay of a relativistic scalar field from a metastable vacuum
- Non-adiabatic dynamics across a first order quantum phase transition: Quantized bubble nucleation
- The fate of the false vacuum: Finite temperature, entropy and topological phase in quantum simulations of the early universe
- False vacuum decay: an introductory review
- Enhancing a Many-body Dipolar Rydberg Tweezer Array with Arbitrary Local Controls
- The Thin-Wall Approximation in Vacuum Decay: a Lemma
- Variations on vacuum decay: the scaling Ising and tricritical Ising field theories
- Observation of anomalous information scrambling in a Rydberg atom array
- Realization of a doped quantum antiferromagnet with dipolar tunnelings in a Rydberg tweezer array
- Detecting a long lived false vacuum with quantum quenches
- Stirring the false vacuum via interacting quantized bubbles on a 5564-qubit quantum annealer
- False vacuum decay and nucleation dynamics in neutral atom systems
- Theory of metastable states in many-body quantum systems
- A fiber array architecture for atom quantum computing