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Quantized conductance through a dissipative atomic point contact

Authors :
Corman, Laura
Fabritius, Philipp
Häusler, Samuel
Mohan, Jeffrey
Dogra, Lena H.
Husmann, Dominik
Lebrat, Martin
Esslinger, Tilman
Source :
Phys. Rev. A 100, 053605 (2019)
Publication Year :
2019

Abstract

Signatures of quantum transport are expected to quickly vanish as dissipation is introduced in a system. This dissipation can take several forms, including that of particle loss, which has the consequence that the total probability current is not conserved. Here, we study the effect of such losses at a quantum point contact (QPC) for ultracold atoms. Experimentally, dissipation is provided by a near-resonant optical tweezer whose power and detuning control the loss rates for the different internal atomic states as well as their effective Zeeman shifts. We theoretically model this situation by including losses in the Landauer-B\"uttiker formalism over a wide range of dissipative rates. We find good agreement between our measurements and our model, both featuring robust conductance plateaus. Finally, we are able to map out the atomic density by varying the position of the near-resonant tweezer inside the QPC, realizing a dissipative scanning gate microscope for cold atoms.<br />Comment: Coming in part from a previous arXiv manuscript (arXiv:1902.05516v1)

Details

Database :
arXiv
Journal :
Phys. Rev. A 100, 053605 (2019)
Publication Type :
Report
Accession number :
edsarx.1907.06436
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevA.100.053605