Goos-Hänchen shifts in a combined tripod and atom-light coupling scheme
Creators
- 1. Ministry of Education Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, Shaanxi Province Key Laboratory of Quantum Information and Quantum Optoelectronic Devices, School of Physics, Xi'an Jiaotong University, Xi'an 710049, China
- 2. School of Physics, Institute for Research in Fundamental Sciences (IPM), Tehran 19395-5531, Iran
- 3. Quantum Optics Lab. Department of Physics, COMSATS University Islamabad, Islamabad 45550, Pakistan
- 4. Baltic Institute of Advanced Technology, Pilies St. 16-8, LT-01403 Vilnius, Lithuania
- 5. Institute of Theoretical Physics and Astronomy, Vilnius University, Sauletekio 3, Vilnius 10257, Lithuania
Description
We investigate the controlled manipulation of the Goos-Hänchen (GH) shift in probe light beams, encompassing both plane and Gaussian beams, when introduced into a cavity housing a highly resonant five-level atomic system exhibiting a combined tripod and (CTL) configuration. This complex scheme arises from the interaction of three atomic ground states with two excited states through five distinct light fields. Such a system effectively reduces to a - or N-shaped configuration by manipulating the light fields, resulting in the alteration of the dispersion behavior of the probe beam, ultimately inducing either a positive or negative GH shift. This unique behavior is a direct consequence of the closed-loop structure inherent to the five-level atomic scheme. For both plane and Gaussian beams, we demonstrate the superiority of CTL over and schemes in achieving substantial positive GH shifts. When considering Gaussian probe light, we observe a critical role played by the beam width in controlling the magnitude and sign of the GH shifts. Our proposed approach for studying the GH shift carries significant practical implications, particularly in its capacity to monitor media with either left-handed characteristics displaying negative permittivity and permeability or right-handed characteristics displaying positive permittivity and permeability through the manipulation of externally controlled parameters. This approach may find applications in various fields, including optical heterodyne sensors used to measure beam angle, displacement, temperature, and refractive index, thereby advancing our understanding and control of optical phenomena.
Additional details
Identifiers
- DOI
- 10.1103/PhysRevA.110.023730;
- Crossref Funder ID
- 10.13039/501100001809; 10.13039/501100017596; 10.13039/501100011368;
Publishing Information
- Journal Title
- Physical Review A
- Journal Volume
- 110
- Journal Issue
- 2
- Journal Page Range
- 11 pgs.
- ISSN
- 1094-1622
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- Subject category
- S74: ATOMIC AND MOLECULAR PHYSICS; S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
- Descriptors DEI
- ATOMS; BEAMS; CAPACITY; CAVITY RESONATORS; CONFIGURATION; CONTROL; EXCITED STATES; GAUSS FUNCTION; GROUND STATES; INTERACTIONS; LIGHT TRANSMISSION; NONLINEAR OPTICS; PERMEABILITY; PERMITTIVITY; REFRACTIVE INDEX; VISIBLE RADIATION
Optional Information
- Copyright
- ©2024 American Physical Society
- Contract/Grant/Project number
- 12174301; 2023-JC-JQ-01; SKLA202312
- Notes
- Contact Email: Contact author: muqaddarabbas@xjtu.edu.cn; Contact Email: Contact author: asadpour@ipm.ir; Contact Email: Contact author: zhangpei@mail.ustc.edu.cn; Contact Email: Contact author: hamid.hamedi@tfai.vu.lt; Record automatically processed
- Funding organization
- National Natural Science Foundation of China; Natural Science Basic Research Program of Shaanxi Province; State Key Laboratory of Acoustics, Chinese Academy of Sciences