Modeling the time-dependent electron dynamics in dielectric materials induced by two-color femtosecond laser pulses: Applications to material modifications
Journal article, 2021

Controlling the electron dynamics during laser-matter interactions is a key factor to control the energy deposition and subsequent material modifications induced by femtosecond laser pulses. One way to achieve this goal is to use two-color femtosecond laser pulses. In this paper, the electron dynamics in dielectric materials induced by two-color femtosecond laser pulses is studied by solving dedicated optical Bloch equations. This model includes photo- and impact ionization, the laser heating of conduction electrons, their recombination to the valence band, and their collisions with phonons. The influence of photon energies, laser intensities, and pulse-to-pulse delay is analyzed. Depending on the interaction process, colors cooperate to excite electrons or drive them independently. For the given laser parameters, an optimal pulse-to-pulse delay is found which enhances significantly the energy deposition into the material, in agreement with experimental observations.

Author

P. González De Alaiza Martínez

University of Bordeaux

E. Smetanina

Moscow State University

Illia Thiele

Chalmers, Physics, Subatomic and Plasma Physics

B. Chimier

University of Bordeaux

G. Duchateau

University of Bordeaux

Physical Review A

24699926 (ISSN) 24699934 (eISSN)

Vol. 103 3 033107

Subject Categories

Atom and Molecular Physics and Optics

Other Physics Topics

Condensed Matter Physics

DOI

10.1103/PhysRevA.103.033107

More information

Latest update

3/25/2021