Transport controlled by Poincaré orbit topology in a driven inhomogeneous lattice gas
ORAL
Abstract
In periodic quantum systems which are both homogeneously tilted and driven, the interplay between drive and Bloch oscillations controls transport dynamics. Using a quantum gas in a modulated optical lattice, we show experimentally that inhomogeneity of the applied force leads to a rich variety of dynamical behaviors controlled by the drive phase, from self-parametrically-modulated Bloch epicycles to adaptive driving of transport against a force gradient to modulation-enhanced monopole modes. By examining Poincaré portraits of the semiclassical transport equations, we demonstrate that the observed dynamics reflect the rich topological structure of stroboscopic orbits on a Brillouin phase-space cylinder.
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Publication: Alec Cao, Roshan Sajjad, Ethan Q. Simmons, Cora J. Fujiwara, Toshihiko Shimasaki, and David M. Weld, Phys. Rev. Research 2, 032032(R) (2020)
Presenters
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Alec J Cao
University of California, Santa Barbara
Authors
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Alec J Cao
University of California, Santa Barbara
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Roshan Sajjad
University of California, Santa Barbara
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Ethan Q Simmons
University of California, Santa Barbara
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Coraline Fujiwara
Univ of Toronto
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Toshihiko Shimasaki
University of California, Santa Barbara
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David M Weld
University of California, Santa Barbara