Observation of parity-time symmetry breaking transitions in a dissipative Floquet system of ultracold atoms
Jiaming Li, Andrew K. Harter, Ji Liu, Leonardo de Melo, Yogesh N., Joglekar, Le Luo

TL;DR
This paper reports the experimental observation of parity-time symmetry breaking transitions in a dissipative Floquet system of ultracold atoms, revealing complex phase structures and dynamics due to time-periodic dissipation.
Contribution
It demonstrates the realization and observation of $ ext{PT}$-symmetry breaking transitions in a Floquet system using ultracold atoms with engineered time-periodic dissipation.
Findings
Observation of $ ext{PT}$-symmetry breaking and restoring transitions at small dissipation.
Rich phase structures in a Floquet open system.
Comparison between static and time-periodic dissipation effects.
Abstract
Open physical systems with balanced loss and gain, described by non-Hermitian parity-time () reflection symmetric Hamiltonians, exhibit a transition which could engenders modes that exponentially decay or grow with time and thus spontaneously breaks the -symmetry. Such -symmetry breaking transitions have attracted many interests because of their extraordinary behaviors and functionalities absent in closed systems. Here we report on the observation of -symmetry breaking transitions by engineering time-periodic dissipation and coupling, which are realized through state-dependent atom loss in an optical dipole trap of ultracold Li atoms. Comparing with a single transition appearing for static dissipation, the time-periodic counterpart undergoes -symmetry breaking and restoring transitions at vanishingly small…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum Mechanics and Applications · Quantum Information and Cryptography
