Measurement of the Phase of Few-Cycle Laser Pulses
Top Cited Papers
- 18 December 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 91 (25) , 253004
- https://doi.org/10.1103/physrevlett.91.253004
Abstract
For the shortest pulses generated to date, the amplitude of the electromagnetic wave changes almost as rapidly as the field oscillates. The temporal variation of the field, which directly governs strong-field interactions, therefore depends on whether the maximum of the pulse amplitude coincides with that of the wave cycle or not, i.e., on the phase of the field with respect to the pulse envelope. It is demonstrated that the direction of electron emission from photoionized atoms can be controlled by varying the phase of the field, providing for the first time a tool for its accurate determination. Directing fast electron emission to the right or to the left with the light phase constitutes a new kind of coherent control.Keywords
This publication has 25 references indexed in Scilit:
- Attosecond control of electronic processes by intense light fieldsNature, 2003
- Role of the Carrier-Envelope Offset Phase of Few-Cycle Pulses in Nonperturbative Resonant Nonlinear OpticsPhysical Review Letters, 2002
- Attosecond metrologyNature, 2001
- Absolute-phase phenomena in photoionization with few-cycle laser pulsesNature, 2001
- Spectral Features and Modeling of High-Order Harmonics Generated by Sub-10-fs PulsesPhysical Review Letters, 2000
- Carrier-Envelope Phase Control of Femtosecond Mode-Locked Lasers and Direct Optical Frequency SynthesisScience, 2000
- Measuring the frequency of light with mode-locked lasersOptics Communications, 1999
- Frontiers in Ultrashort Pulse Generation: Pushing the Limits in Linear and Nonlinear OpticsScience, 1999
- Carrier-envelope offset phase control: A novel concept for absolute optical frequency measurement and ultrashort pulse generationApplied Physics B Laser and Optics, 1999
- Generation of Coherent X-rays in the Water Window Using 5-Femtosecond Laser PulsesScience, 1997