Parametric amplification of attosecond coherent pulses around 100 eV at the sin- gle–atom level is demonstrated for the first time by using the 3D time–dependent Schrödinger equation in high–harmonic generation processes from excited states of He+. We present the attosecond dynamics of the amplification process far from the ionization threshold and resolve the physics behind it. The amplification of a particular central photon energy requires the seed XUV pulses to be perfectly synchronized in time with the driving laser field for stimulated recombination to the He+ ground state and is only produced in a few specific laser cycles in agreement with the experimental measurements. Our simulations show that the amplified photon energy region ca...
The thesis is devoted to the analytical and numerical studies of high-order harmonic generation and ...
© 2016 [Optical Society of America]. One print or electronic copy may be made for personal use only....
The motivation to control and temporarily isolate a single quantum mechanical event like an electron...
Parametric amplification of attosecond coherent pulses around 100 eV at the single– atom level is d...
© 2015 [Optical Society of America]. One print or electronic copy may be made for personal use only....
We present an efficient method to generate a ultrashort attosecond (as) pulse when a model He+ ion i...
Attosecond pulses in the extreme ultraviolet (XUV) spectral range are today routinely generated via ...
The generation of the high-order harmonic and the attosecond pulse from He atom driven by the near-i...
Electronic dynamics in molecules and atoms takes place on the attosecond timescale. For the observat...
Intense extreme-ultraviolet (XUV) pulses enable the investigation of XUV-induced non-linear processe...
The strong-field process of high-harmonic generation is the foundation for generating isolated attos...
The quantum mechanical motion of electrons and nuclei in systems spatially confined to the molecular...
Generation of high-order harmonics has emerged as a powerful technique for the generation of broadba...
The observation and manipulation of electron dynamics in matter call for attosecond light pulses, ro...
Attosecond light pulses within the vacuum ultraviolet (VUV) energy range are predicted by solving th...
The thesis is devoted to the analytical and numerical studies of high-order harmonic generation and ...
© 2016 [Optical Society of America]. One print or electronic copy may be made for personal use only....
The motivation to control and temporarily isolate a single quantum mechanical event like an electron...
Parametric amplification of attosecond coherent pulses around 100 eV at the single– atom level is d...
© 2015 [Optical Society of America]. One print or electronic copy may be made for personal use only....
We present an efficient method to generate a ultrashort attosecond (as) pulse when a model He+ ion i...
Attosecond pulses in the extreme ultraviolet (XUV) spectral range are today routinely generated via ...
The generation of the high-order harmonic and the attosecond pulse from He atom driven by the near-i...
Electronic dynamics in molecules and atoms takes place on the attosecond timescale. For the observat...
Intense extreme-ultraviolet (XUV) pulses enable the investigation of XUV-induced non-linear processe...
The strong-field process of high-harmonic generation is the foundation for generating isolated attos...
The quantum mechanical motion of electrons and nuclei in systems spatially confined to the molecular...
Generation of high-order harmonics has emerged as a powerful technique for the generation of broadba...
The observation and manipulation of electron dynamics in matter call for attosecond light pulses, ro...
Attosecond light pulses within the vacuum ultraviolet (VUV) energy range are predicted by solving th...
The thesis is devoted to the analytical and numerical studies of high-order harmonic generation and ...
© 2016 [Optical Society of America]. One print or electronic copy may be made for personal use only....
The motivation to control and temporarily isolate a single quantum mechanical event like an electron...