2D sub-half-wavelength atom localization in a three-level V-type atomic system
Md Sabir Ali, Vaishali Naik, Ayan Ray, Alok Chakrabarti

TL;DR
This paper demonstrates high-precision two-dimensional atom localization in a three-level V-type system using a microwave coupling field, with localization accuracy depending on system parameters and probe absorption spectra.
Contribution
It introduces a novel scheme employing a microwave field to achieve 2D atom localization in a V-type system, enhancing control over atomic position measurement.
Findings
Position-dependent probe absorption enables atom localization.
Localization accuracy depends on detuning, phase, and field strength.
Different absorption profiles can be achieved by tuning parameters.
Abstract
It is shown, using density matrix calculation, that high precision two-dimensional (2D) atom localization in V-type system can be achieved by applying an additional microwave coupling field between the excited states. In the present scheme, two lasers, probe and pump, form a V-type system by coupling the ground state to the excited states while an additional 2D standing microwave field is used to couple the excited states. The solutions of the density matrix equations reveal that the off-diagonal density matrix element , which signify the coherence between the states connected by the probe laser, is position dependent. As the imaginary part of is proportional to the imaginary part of the susceptibility, the probe absorption also becomes position dependent and in this situation one can readily obtain information about the atom position from the probe absorption…
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Taxonomy
TopicsQuantum optics and atomic interactions · Quantum Information and Cryptography · Cold Atom Physics and Bose-Einstein Condensates
