Nonreciprocal recovery of electromagnetically induced transparency by wavenumber mismatch in hot atoms

Fuente: arXiv
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Main Authors: Zhang, Lida, Stiesdal, Nina, Busche, Hannes, Hansen, Mikkel Gaard, Pohl, Thomas, Hofferberth, Sebastian
Format: Preprint
Published: 2024
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author Zhang, Lida
Stiesdal, Nina
Busche, Hannes
Hansen, Mikkel Gaard
Pohl, Thomas
Hofferberth, Sebastian
author_facet Zhang, Lida
Stiesdal, Nina
Busche, Hannes
Hansen, Mikkel Gaard
Pohl, Thomas
Hofferberth, Sebastian
contents For multi-level systems in hot atomic vapors the interplay between the Doppler shift due to atom velocity and the wavenubmer mismatch between driving laser fields strongly influences transmission and absorption properties of the atomic medium. In a three-level atomic ladder-system, Doppler broadening limits the visibility of electromagnetically-induced transparency (EIT) when the probe and control fields are co-propagating, while EIT is recovered under the opposite condition of counter-propagating geometry and $k_{p} < k_{c}$, with $k_{p}$ and $k_{c}$ being the wavenumbers of the probe and control fields, respectively. This effect has been studied and experimentally demonstrated as an efficient mechanism to realize non-reciprocal probe light transmission, opening promising avenues for example for realization of magnetic-field free optical isolators. In this tutorial we discuss the theoretical derivation of this effect and show the underlying mechanism to be an avoided crossing of the states dressed by the coupling laser as a function of atomic velocities when $k_{p}<k_{c}$. We investigate how the non-reciprocity scales with wavelength mismatch and show how to experimentally demonstrate the effect in a simple Rydberg-EIT system using thermal Rubidium atoms.
format Preprint
id arxiv_https___arxiv_org_abs_2403_01553
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nonreciprocal recovery of electromagnetically induced transparency by wavenumber mismatch in hot atoms
Zhang, Lida
Stiesdal, Nina
Busche, Hannes
Hansen, Mikkel Gaard
Pohl, Thomas
Hofferberth, Sebastian
Quantum Physics
For multi-level systems in hot atomic vapors the interplay between the Doppler shift due to atom velocity and the wavenubmer mismatch between driving laser fields strongly influences transmission and absorption properties of the atomic medium. In a three-level atomic ladder-system, Doppler broadening limits the visibility of electromagnetically-induced transparency (EIT) when the probe and control fields are co-propagating, while EIT is recovered under the opposite condition of counter-propagating geometry and $k_{p} < k_{c}$, with $k_{p}$ and $k_{c}$ being the wavenumbers of the probe and control fields, respectively. This effect has been studied and experimentally demonstrated as an efficient mechanism to realize non-reciprocal probe light transmission, opening promising avenues for example for realization of magnetic-field free optical isolators. In this tutorial we discuss the theoretical derivation of this effect and show the underlying mechanism to be an avoided crossing of the states dressed by the coupling laser as a function of atomic velocities when $k_{p}<k_{c}$. We investigate how the non-reciprocity scales with wavelength mismatch and show how to experimentally demonstrate the effect in a simple Rydberg-EIT system using thermal Rubidium atoms.
title Nonreciprocal recovery of electromagnetically induced transparency by wavenumber mismatch in hot atoms
topic Quantum Physics
url https://arxiv.org/abs/2403.01553