Attosecond physics

Ferenc Krausz, Misha Ivanov
2009-02-02

attosecond physicsattosecond pulsesfew-cycle lightreal-time observation of electron dynamicssubcycle field evolution
Intense ultrashort light pulses comprising merely a few wave cycles became routinely available by the turn of the millennium. The technologies underlying their production and measurement as well as relevant theoretical modeling have been reviewed in the pages of Reviews of Modern Physics (Brabec and Krausz, 2000). Since then, measurement and control of the subcycle field evolution of few-cycle light have opened the door to a radically new approach to exploring and controlling processes of the microcosm. The hyperfast-varying electric field of visible light permitted manipulation and tracking of the atomic-scale motion of electrons. Striking implications include controlled generation and measurement of single attosecond pulses of extreme ultraviolet light as well as trains of them, and real-time observation of atomic-scale electron dynamics. The tools and techniques for steering and tracing electronic motion in atoms, molecules, and nanostructures are now becoming available, marking the birth of attosecond physics. In this article these advances are reviewed and some of the expected implications are addressed.
1
Availability of intense ultrashort few-cycle light pulses by ~2000 enabled new experimental capabilities.
2
Controlled generation and measurement of single attosecond extreme-ultraviolet pulses and pulse trains have been achieved.
3
Measurement and control of subcycle field evolution of few-cycle light allows manipulation and tracking of atomic-scale electron motion.
4
Real-time observation of atomic-scale electron dynamics is now possible using attosecond techniques.
5
Tools and techniques for steering and tracing electronic motion in atoms, molecules, and nanostructures have emerged, establishing attosecond physics.

Attosecond physics (study of ultrafast electron dynamics driven and probed by attosecond extreme-ultraviolet and few-cycle visible/IR light pulses)

Measurement, control, and real-time tracking of atomic-scale electronic motion using generation and detection of single attosecond pulses and attosecond pulse trains, including techniques for steering and tracing electron dynamics

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2009-02-02
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Ferenc Krausz
Misha Ivanov
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