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Photonic Quantum Computing
Open Quantum Systems Decoherence
Tailored dissipation for directional transport in plasmonic ratchets
arXiv
Authors: Anna Sidorenko, Jan Mathis Giesen, Sebastian Eggert, Stefan Linden
Year
2026
Paper ID
22551
Status
Preprint
Abstract Read
~2 min
Abstract Words
123
Citations
N/A
Abstract
We present a joint experimental and theoretical study of a ratchet implemented in arra ys of evanescently coupled plasmonic waveguides with tailored losses. In this setup the time-periodic dissipation is the only active mechanism and notably, we find better rectified transport and lower losses in the transmitted signal with increased local dissipation. Using Floquet theory, we uncover a driving regime that allows efficient directional tr ansport for suitable driving frequencies and loss rates, which are linked to linear qu asienergy bands with minimal losses. These regions are separated from non-resonant beh avior by sharp transitions with characteristic exceptional points in the spectrum. Direct experimental observation of the Floquet-dissipative ratchet effect using a comb ination of real- and Fourier-space leakage radiation microscopy is provided.
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- This paper contributes to the Photonic Quantum Computing research area in the Quantum Articles archive.
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- We present a joint experimental and theoretical study of a ratchet implemented in arra ys of evanescently coupled plasmonic waveguides with tailored losses.
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