Controlling laser spectra in a phaseonium photonic crystal using maser
arXiv:1205.5262 · doi:10.1007/s00340-013-5407-4
Abstract
We study the control of quantum resonances in photonic crystals with electromagnetically induced transparency driven by microwave field. In addition to the control laser, the intensity and phase of the maser can alter the transmission and reflection spectra in interesting ways, producing hyperfine resonances through the combined effects of multiple scattering in the superstructure.
7 pages, 4 figures
References in corpus (13)
- Stationary pulses of light in an atomic medium
- Controlled coupling of a single nitrogen-vacancy center to a silver nanowire
- Photon storage in Lambda-type optically dense atomic media. II. Free-space model
- Electromagnetically induced transparency controlled by a microwave field
- Electromagnetically-induced transparency with amplification in superconducting circuits
- Photon storage in Lambda-type optically dense atomic media. III. Effects of inhomogeneous broadening
- Slow light with integrated gain and large pulse delay
- Coherent control of atomic excitation using off-resonant strong few-cycle pulses
- Quantum coherence-assisted propagation of surface plasmon polaritons
- Experimental observation of carrier-envelope phase effects by multicycle pulses
- Phase dependent interference effects on atomic excitation
- Ultralow-power local laser control of the dimer density in alkali-metal vapors through photodesorption
- Microwave controlled efficient Raman and sub-Raman generation