Absorption and emission of single attosecond light pulses in an autoionizing gaseous medium dressed by a time-delayed control field
arXiv:1211.6172 · doi:10.1103/PhysRevA.87.013415
Abstract
An extreme ultraviolet (EUV) single attosecond pulse passing through a laser-dressed dense gas is studied theoretically. The weak EUV pulse pumps the helium gas from the ground state to the 2s2p(1P) autoionizing state, which is coupled to the 2s2(1S) autoionizing state by a femtosecond infrared laser with the intensity in the order of 10^{12} W/cm2. The simulation shows how the transient absorption and emission of the EUV are modified by the coupling laser. A simple analytical expression for the atomic response derived for delta-function pulses reveals the strong modification of the Fano lineshape in the spectra, where these features are quite universal and remain valid for realistic pulse conditions. We further account for the propagation of pulses in the medium and show that the EUV signal at the atomic resonance can be enhanced in the gaseous medium by more than 50% for specifically adjusted laser parameters, and that this enhancement persists as the EUV propagates in the gaseous medium. Our result demonstrates the high-level control of nonlinear optical effects that are achievable with attosecond pulses.
10 pages, 8 figures
References in corpus (4)
- Femtosecond induced transparency and absorption in the extreme ultraviolet by coherent coupling of the He 2s2p (1P0) and 2p2 (1Se) double excitation states with 800 nm light
- Photoabsorption of attosecond XUV light pulses by two strongly laser-coupled autoionizing states
- Laser-assisted-autoionization dynamics of helium resonances with single attosecond pulses
- Resonant enhancement of a single attosecond pulse in a gas medium by a time-delayed control field
Cited by in corpus (7)
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- Some Exact Properties of the Nonequilibrium Response Function for Transient Photoabsorption
- Two-dimensional spectral interpretation of time-dependent absorption near laser-coupled resonances
- Relativistic time-dependent configuration-interaction singles
- Attosecond transient absorption of a bound wave packet coupled to a smooth continuum
- Probing dipole-forbidden autoionizing states by isolated attosecond pulses
- Gauge-invariant absorption of light from a coherent superposition of states