Title :
Space-time profiles of shaped ultrafast optical waveforms
Author :
Wefers, Marc M. ; Nelson, Keith A.
Author_Institution :
Dept. of Chem., MIT, Cambridge, MA, USA
fDate :
1/1/1996 12:00:00 AM
Abstract :
A derivation of the space-time profiles of ultrafast optical waveforms shaped by filtering of spatially separated frequency components is presented. Closed form expressions for the space-time impulse response functions are given for the cases of single and double passes through a pulse shaping apparatus. For a single pass and a short unshaped pulse, diffraction by the mask filter gives rise to a translational spatial shift in the desired electric field profile that varies linearly with time along the shaped waveform. This result is completely general, and applies to frequency-domain pulse shaping with either continuous or discrete mask filters. It is also shown that double passing the apparatus does not generally reverse this effect but rather introduces further space-time coupling such as a time-varying spotsize. Examples of specific mask patterns are presented and implications for the generation of high-fidelity shaped optical waveforms are discussed
Keywords :
filtering theory; high-speed optical techniques; masks; spatial filters; transient response; closed form expressions; discrete mask filters; double passes; double passing; electric field profile; frequency-domain pulse shaping; high-fidelity shaped optical waveforms; mask filter diffraction; pulse shaping apparatus; shaped ultrafast optical waveforms; shaped waveform; short unshaped pulse; single passes; space-time coupling; space-time impulse response functions; space-time profiles; spatially separated frequency components; specific mask patterns; time-varying spotsize; translational spatial shift; Frequency; Holographic optical components; Holography; Optical attenuators; Optical devices; Optical filters; Optical modulation; Optical pulse shaping; Pulse modulation; Ultrafast optics;
Journal_Title :
Quantum Electronics, IEEE Journal of