Correlations and dynamics of tunnel-coupled one-dimensional Bose gases
Thomas Schweigler

TL;DR
This paper experimentally investigates the correlations, interactions, and dynamical evolution of phase coherence in tunnel-coupled one-dimensional Bose gases, revealing how non-Gaussian fluctuations evolve into Gaussian states and how phase coherence emerges.
Contribution
It provides the first experimental measurement of non-factorizing higher-order correlation functions in tunnel-coupled 1D Bose gases, demonstrating the dynamical transition from non-Gaussian to Gaussian fluctuations.
Findings
Non-factorizing fourth-order correlations measured, indicating interactions.
Observation of dynamical evolution from non-Gaussian to Gaussian phase fluctuations.
Emergence of phase coherence in different initial states.
Abstract
We present a series of experiments performed with two ultracold one-dimensional Bose gases (rubidium atoms) in a double well potential. Employing matter-wave interference, we can measure the spatially resolved phase difference between the two gases and consequently investigate spatial correlations. By investigating whether higher order correlation functions can be factorized into correlations of lower order, we can investigate the interaction properties of the system. For a non-interacting system, all correlation functions with orders greater than two factorize and one observes Gaussian fluctuations. Here, we present the measurement of non-factorizing fourth-order correlation functions, leading to an experimental characterization of the interactions between the collective excitations of the quantum many-body system. The degree of non-factorizibility, i.e., the degree of…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum many-body systems · Quantum, superfluid, helium dynamics
