Interactive four-level tripod configuration in Zeeman sublevels of 87Rb leads to power broadening immune electromagnetically induced transparency

Author:

Seth Priyabrata1ORCID,Bhattacharyya Dipankar2ORCID,Mallick Nawaz Sarif1ORCID,De Sankar1ORCID

Affiliation:

1. Homi Bhabha National Institute

2. Santipur College

Abstract

We experimentally demonstrate double EIT resonances in a four-level tripod system, formed within the Zeeman sublevels of the F=2→F=1 transition of 87Rb with co-propagating, phase coherent pump and probe beams. We observe two EIT peaks with unequal peak heights in the probe transmission signal. The larger peak exhibits linear power broadening with varying pump power and longitudinal magnetic field, while the smaller EIT peak, influenced by the earth’s non-zero transverse magnetic field, maintains a constant linewidth with power variation and shows mixed behavior with longitudinal magnetic field variation. Our analysis involves decomposing the tripod into two interacting Λ systems, highlighting the impact of this interaction on the weaker Λ system and its resulting immunity to power broadening. Theoretical simulations, based on steady-state solutions of density matrix equations, align well with experimental observations. We reveal that, in higher magnetic fields, the stronger Λ system dominates the weaker one, affecting its normal behavior, while in lower magnetic fields, power broadening is observed. This study has important applications in atom-based magnetometry and precision measurement. Further, the narrower linewidth of the smaller EIT peak can help with longer storage times in an atomic medium compared to the usual stronger Λ system.

Funder

Department of Science and Technology, Ministry of Science and Technology, India

Science and Engineering Research Board

Department of Atomic Energy, Government of India

Publisher

Optica Publishing Group

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