DocumentCode :
1526085
Title :
Spectral Phase Characterization of Two-Octave Bandwidth Pulses by Two-Dimensional Spectral Shearing Interferometry Based on Noncollinear Phase Matching With External Pulse Pair
Author :
Yamane, Keisaku ; Katayose, Masato ; Yamashita, Mikio
Author_Institution :
Dept. of Appl. Phys., Hokkaido Univ., Sapporo, Japan
Volume :
23
Issue :
16
fYear :
2011
Firstpage :
1130
Lastpage :
1132
Abstract :
Noncollinear phase matching with an external powerful reference pulse pair and an extremely broadband pulse to be measured in two-dimensional spectral shearing interferometry enabled us to characterize its spectral phase over the so-far broadest wavelength range from 328 to 1363 nm. The method has the additional advantage of the shorter measurement time (10 s) and higher sensitivity (at least 100 times) compared to conventional modified spectral-phase interferometry for direct electric-field reconstruction. This result exceeding two octaves suggests a possibility of the first generation of a single subcycle pulse in the ultraviolet to near-infrared region by the application to the feedback chirp compensation of the induced phase-modulated pulse with the use of a recently developed spatial light modulator with an over-two-octave bandwidth.
Keywords :
chirp modulation; light interferometry; optical phase matching; optical pulse generation; phase modulation; spatial light modulators; ultraviolet spectra; direct electric-field reconstruction; external pulse pair; extremely broadband pulse; feedback chirp compensation; near-infrared region; noncollinear phase matching; phase-modulated pulse; single subcycle pulse generation; spatial light modulator; spectral phase characterization; spectral-phase interferometry; two-dimensional spectral shearing interferometry; two-octave bandwidth pulses; ultraviolet region; wavelength 328 nm to 1363 nm; Bandwidth; Phase measurement; Pollution measurement; Pulse measurements; Sensitivity; Time measurement; Wavelength measurement; Optical interferometry; pulse measurements; ultrafast optics;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2011.2157486
Filename :
5773479
Link To Document :
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