Theoretical Modeling of Ultrashot Laser Pulse Interaction With Dielectric and Semiconductor Materials

Abstract

A microscopic quantum-kinetic theory based on density matrix formalism is formulated to describe the processes of short pulse laser interaction with materials such as semiconductors accounting for arbitrary spatial inhomogeneities in the excitation conditions and other spatial phenomena such as filamentation of tightly focused femtosecond laser pulses, structural modification and catastrophic optical damage. A system of Boltzmann-Bloch transport equations are established that include both space and momentum dependence of the electron and hole distribution functions and the polarization. Microscopic electronphonon and electron-electron scattering terms as well as scattering terms that lead to transitions between valence and conduction bands, i.e. impact ionization and recombination terms, are included explicitly in the equations. The formulated theory describes the spatio-temporal dynamics of electrons and holes in inhomogeneously excited materials including the coherent interactions of carriers and the laser light field as well as transport due to spatial gradients and electrostatic forces.

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Document Details

Document Type
Technical Report
Publication Date
May 24, 2010
Accession Number
ADA525581

Entities

People

  • Tzveta Apostolova

Organizations

  • Bulgarian Academy of Sciences

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Boltzmann Equation
  • Conduction Bands
  • Crystal Lattice Vibrations
  • Crystal Lattices
  • Distribution Functions
  • Dynamics
  • Electromagnetic Fields
  • Electromagnetic Radiation
  • Electron Density
  • Electron Energy
  • Electrons
  • Energy Bands
  • Equations
  • Femtosecond Time
  • Kinetic Theory
  • Laser Pulses
  • Scattering

Fields of Study

  • Physics

Readers

  • Pulsed Power and Plasma Physics.
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.

Technology Areas

  • Directed Energy
  • Microelectronics
  • Quantum Computing
  • Space