Non-exponential tunneling due to mean-field induced swallowtails
Q. Guan, M. K. H. Ome, T. M. Bersano, S. Mossman, P., Engels, D. Blume

TL;DR
This paper demonstrates the experimental realization of a non-linear quantum system with swallowtail energy spectra using ultracold atoms in an optical lattice, revealing non-exponential tunneling and self-trapping phenomena.
Contribution
It introduces an experimental implementation of a non-linear Hamiltonian supporting swallowtails, validating theoretical predictions with ultracold atom experiments.
Findings
Observation of self-trapping in ultracold atoms
Detection of non-exponential tunneling probabilities
Good agreement between theory and experiment
Abstract
Typically, energy levels change without bifurcating in response to a change of a control parameter. Bifurcations can lead to loops or swallowtails in the energy spectrum. The simplest quantum Hamiltonian that supports swallowtails is a non-linear Hamiltonian with non-zero off-diagonal elements and diagonal elements that depend on the population difference of the two states. This work implements such a Hamiltonian experimentally using ultracold atoms in a moving one-dimensional optical lattice. Self-trapping and non-exponential tunneling probabilities, a hallmark signature of band structures that support swallowtails, are observed. The good agreement between theory and experiment validates the optical lattice system as a powerful platform to study, e.g., Josephson junction physics and superfluidity in ring-shaped geometries.
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