DocumentCode :
2223969
Title :
Superluminal optical pulse reflection at 1.5 micron in a double-Lorentzian fiber Bragg grating
Author :
Longhi, S. ; Laporta, P. ; Marano, M. ; Belmonte, M.
Author_Institution :
Ist. Nazionale per la Fisica della Materia, Politecnico di Milano, Italy
fYear :
2002
fDate :
19-24 May 2002
Firstpage :
81
Abstract :
Summary form only given. We demonstrate superluminal reflection of picosecond optical pulses at the wavelength of optical communications (1.5 /spl mu/m) using a double- Lorentzian fiber Bragg grating (DL-FBG) as a photonic barrier in which two closely-spaced resonance modes realize in reflection the dispersive properties of a gain-doublet system recently exploited to demonstrate negative group velocities. The use of a FBG presents several advantages as compared to quarter-wave dielectric structures previously used for tunneling experiments at optical wavelengths. First, the weak Bragg scattering per-length realized in a FBG permits the use of long structures, leading to a drastic increase of the time scale involved in tunneling processes. Tunneling and reflection times can thus be precisely measured using direct time-domain optoelectronic means instead of indirect autocorrelation techniques. In addition, the writing techniques of FBG allow the fabrication of FBG with complicated index profiles, such as that needed in a DL-FBG.
Keywords :
Bragg gratings; high-speed optical techniques; light reflection; optical fibre fabrication; optical time-domain reflectometry; tunnelling; 1.5 micron; closely-spaced resonance modes; complicated index profiles; direct time-domain optoelectronic means; dispersive properties; double-Lorentzian fiber Bragg grating; fabrication; gain-doublet system; indirect autocorrelation techniques; long structures; negative group velocities; optical communication wavelength; photonic barrier; picosecond optical pulses; reflection times; superluminal optical pulse reflection; time scale; tunneling processes; tunneling times; weak Bragg scattering; writing techniques; Optical fiber fabrication; Optical reflection; Optical time domain reflectometry; Tunneling; Ultrafast optics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2002. QELS '02. Technical Digest. Summaries of Papers Presented at the
Conference_Location :
Long Beach, CA, USA
Print_ISBN :
1-55752-708-3
Type :
conf
DOI :
10.1109/QELS.2002.1031125
Filename :
1031125
Link To Document :
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