https://doi.org/10.1140/epjp/s13360-021-01301-6
Regular Article
Phase-controlled optical Kerr effect in a microwave-driven X-type atomic system
1
Department of Physics, Guru Nanak Dev University, 143005, Amritsar, India
2
Department of Physics, Indian Institute of Technology, 247 667, Rorkee, India
3
G.R.D School of Planning, Guru Nanak Dev University, 143005, Amritsar, India
Received:
22
January
2021
Accepted:
6
March
2021
Published online:
11
March
2021
We theoretically investigate the first- and third-order probe response of a five-level X-type atomic system coupled by the microwave field. The analytical solutions describing the phase dependence of linear/nonlinear probe coherence are obtained by invoking the iterative perturbation method. We find that for both stationary and moving atoms, EIT and Kerr nonlinear behavior of our considered system can be manipulated by altering the relative phase () of the applied e.m. fields. The appropriate choice of
gives rise to colossal Kerr nonlinearity accompanied by the reduced absorption. Further, we analyzed the effect of wavelength mismatch on the linear/nonlinear optical response for three different regimes of wavelength. Our results demonstrate that out of the three wavelength mismatch regimes, maximum Kerr index is obtained when probe field’s wavelength is chosen to be larger than that of the upper two control fields, i.e.,
. Besides providing the largest Kerr effect, this scheme is easy to implement experimentally.
© The Author(s), under exclusive licence to Società Italiana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature 2021