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Self-referencing spectral interferometry for measuring ultrashort optical pulses

IEEE Journal of Quantum Electronics · 1999 · Vol. 35(4) · pp. 501–509
C. IaconisIan A. Walmsley

Abstract

This paper describes a novel self-referencing interferometric method for measuring the time-dependent intensity and phase of ultrashort optical pulses. The technique, spectral phase interferometry for direct electric-field reconstruction (SPIDER), measures the interference between a pair of spectrally sheared replicas of the input pulse. Direct (noniterative) inversion of the interferogram yields the electric field of the input pulse without ambiguity. The interferogram, which is solely a function of frequency, is resolved with a spectrometer and recorded with a slow detector. Moreover, the geometry is entirely collinear and requires no moving components. This paper describes in detail the principle of operation, apparatus, and calibration of SPIDER and gives experimental examples of reconstructed pulses.

Laser-Matter Interactions and ApplicationsAdvanced Fiber Laser TechnologiesSpectroscopy Techniques in Biomedical and Chemical ResearchOpticsInterferometryPhysicsDetectorAmbiguity functionInterference (communication)Ultrashort pulseMichelson interferometerSpectrometerElectric field
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Cited by
Attosecond physics
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References
Optical pulse compression with diffraction gratings
IEEE Journal of Quantum Electronics · 1969 · 1,321 citations
Characterization of arbitrary femtosecond pulses using frequency-resolved optical gating
IEEE Journal of Quantum Electronics · 1993 · 848 citations
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