Self-oscillating pump in a topological dissipative atom-cavity system
Davide Dreon, Alexander Baumg\"artner, Xiangliang Li, Simon Hertlein,, Tilman Esslinger, Tobias Donner

TL;DR
This paper demonstrates a self-oscillating quantum pump driven by a cavity field in a dissipative atom-cavity system, leading to topological transport without external periodic driving, revealing new dynamics in open quantum systems.
Contribution
It introduces a novel self-oscillating pump mechanism in a quantum gas-cavity system, combining topological and dissipative dynamics without external periodic drive.
Findings
Observation of particle current without external periodic drive
Measurement of phase winding of cavity field
Identification of a dissipative time crystal behavior
Abstract
Pumps are transport mechanisms in which direct currents result from a cyclic evolution of the potential. As Thouless has shown, the pumping process can have topological origins, when considering the motion of quantum particles in spatially and temporally periodic potentials. However, the periodic evolution that drives these pumps has always been assumed to be imparted from outside, as was the case in the experimental systems studied so far. Here we report on an emergent mechanism for pumping in a quantum gas coupled to an optical resonator, where we observe a particle current without applying a periodic drive. The pumping potential experienced by the atoms is formed by the self-consistent cavity field interfering with the static laser field driving the atoms. Due to dissipation, the cavity field evolves between its two quadratures, each corresponding to a different centrosymmetric…
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