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Delayed optical images through coupled-resonator-induced transparency.

Parvin Sultana1, Akira Takami, Takahiro Matsumoto

  • 1Department of Physics, Faculty of Science, Shizuoka University, 836 Ohya, Suruga-ku, Shizuoka, Japan 422-8529. psmony@gmail.com

Optics Letters
|October 23, 2010
PubMed
Summary

We demonstrate storing and delaying 2D optical images for 10.6ns using coupled-resonator-induced transparency. This advancement utilizes tunable dispersion for optical data buffering and signal processing.

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Area of Science:

  • Optics and Photonics
  • Quantum Information Science
  • Optical Engineering

Background:

  • Coupled-resonator-induced transparency (CRIT) enables manipulation of light propagation.
  • Controlling light at the nanoscale is crucial for optical buffering and signal processing.
  • Fano interference effects can be exploited for precise spectral control.

Purpose of the Study:

  • To investigate the propagation of transverse two-dimensional images through a CRIT system.
  • To demonstrate optical image storage and delay using tunable dispersion.
  • To analyze the k-space bandwidth and Fano interference effects in the CRIT system.

Main Methods:

  • Propagating 2D optical images encoded on optical pulses through a CRIT frequency window.
  • Utilizing the tunable dispersion of coupled resonators for image storage and delay.
  • Analyzing the amplitude transfer function and k-space bandwidth, considering off-resonance Fano interference.

Main Results:

  • Successfully stored and delayed transverse 2D optical images by 10.6 ns.
  • Demonstrated the role of tunable resonator dispersion in optical image buffering.
  • Characterized the k-space bandwidth influenced by Fano interference effects.

Conclusions:

  • CRIT provides a viable platform for optical image storage and delay.
  • Tunable dispersion in coupled resonators is key for controlling optical pulse propagation.
  • Understanding Fano interference is essential for optimizing the k-space bandwidth of such systems.