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Azimuthal modulation of electromagnetically induced grating using structured light

  • Seyyed Hossein Asadpour
  • , Teodora Kirova*
  • , Jing Qian*
  • , Hamid R. Hamedi
  • , Gediminas Juzeliūnas
  • , Emmanuel Paspalakis
  • *此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

We propose a theoretical scheme for creating a two-dimensional Electromagnetically Induced Grating in a three-level Λ -type atomic system interacting with a weak probe field and two simultaneous position-dependent coupling fields—a two dimensional standing wave and an optical vortex beam. Upon derivation of the Maxwell wave equation, describing the dynamic response of the probe light in the atomic medium, we perform numerical calculations of the amplitude, phase modulations and Fraunhofer diffraction pattern of the probe field under different system parameters. We show that due to the azimuthal modulation of the Laguerre–Gaussian field, a two-dimensional asymmetric grating is observed, giving an increase of the zeroth and high orders of diffraction, thus transferring the probe energy to the high orders of direction. The asymmetry is especially seen in the case of combining a resonant probe with an off-resonant standing wave coupling and optical vortex fields. Unlike in previously reported asymmetric diffraction gratings for PT symmetric structures, the parity time symmetric structure is not necessary for the asymmetric diffraction grating presented here. The asymmetry is due to the constructive and destructive interference between the amplitude and phase modulations of the grating system, resulting in complete blocking of the diffracted photons at negative or positive angles, due to the coupling of the vortex beam. A detailed analysis of the probe field energy transfer to different orders of diffraction in the case of off-resonant standing wave coupling field proves the possibility of direct control over the performance of the grating.

源语言英语
文章编号20721
期刊Scientific Reports
11
1
DOI
出版状态已出版 - 12月 2021

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