Self-oscillating pump in a topological dissipative atom–cavity system
POSTER
Abstract
The time evolution of an quantum system can be strongly affected by dissipation. Although this mainly implies that the system relaxes to a steady state, in some cases it can bring to the appearance of new phases and trigger emergent dynamics. In our experiment, we study a Bose-Einstein Condensate dispersively coupled to a high finesse resonator. The cavity is pumped via the atoms, such that the sum of the coupling beam(s) and the intracavity standing wave gives an optical lattice potential. When the dissipation and the coherent timescales are comparable, we find a regime of persistent oscillations where the cavity field does not reach a steady state. In this regime the atoms experience an optical lattice that periodically deforms itself, even without providing an external time dependent drive. Eventually, the dynamic lattice triggers a pumping mechanism. We will show complementary measurements of the light field and of the atomic transport, proving the connection between the emergent non-stationarity and the pump.
Presenters
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Simon E Hertlein
ETH Zurich
Authors
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Simon E Hertlein
ETH Zurich
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Alexander Baumgärtner
ETH Zürich
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Davide Dreon
ETH Zurich, ETHZ
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Xiangliang Li
ETH Zurich
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Tilman Esslinger
Institute for Quantum Electronics, ETH Zürich, ETH Zurich
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Tobias Donner
ETH Zurich