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Dissipation Induced Structural Instability and Chiral Dynamics in a Quantum Gas
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Dissipative and unitary processes define the evolution of a many-body system. Their interplay gives rise to dynamical phase transitions and can lead to instabilities. We discovered a non-stationary state of chiral nature in a synthetic many-body system with independently controllable unitary and dissipative couplings. Our experiment is based on a spinor Bose gas interacting with an optical resonator. Orthogonal quadratures of the resonator field coherently couple the Bose-Einstein condensate to two different atomic spatial modes whereas the dispersive effect of the resonator losses mediates a dissipative coupling between these modes. In a regime of dominant dissipative coupling we observe the chiral evolution and map it to a positional instability.
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Time crystals in a shaken atom-cavity system
A phase-modulated transverse pump in a cavity-BEC system is predicted to produce a rigid, tunable incommensurate time crystal, with the cavity photon number pulsing at a period set by the detuning from a parametric resonance.
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