Resonant Laser Manipulation of an Atomic Beam

Abstract

Theories for laser-atom interactions have been under development since the advent of laser technology. The theories have yet to be adequately integrated into kinetic flow solvers. Realizing this integration would greatly enhance the scaling of laser-species interactions beyond the realm of ultra-cold atomic physics. A representative numerical investigation was conducted using a custom collisionless gas particle trajectory code, demonstrating this goal in the present study. The investigation covered neutral atomic beam steering and collimation using near-resonant laser fields. In addition to the numerical investigation, a validating experiment was conducted. The experimental results showed good agreement with the numerical simulations when experimental parameters, such as finite laser line width, were taken into account. These simulations showed trends and some limitations associated with the use of a continuous-wave Gaussian laser fields for the steering and collimation of a geometrically skimmed cesium atomic beam using the photon scattering force and the near-resonant induced dipole gradient force. These simulations indicate possible integration of the resonant laser-atom interaction with other rarefied and collisional solvers for similar species such as alkali metals.

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Document Details

Document Type
Technical Report
Publication Date
Jul 01, 2010
Accession Number
ADA524453

Entities

People

  • A. D. Ketsdever
  • S. F. Gimelshein
  • T. C. Lilly

Organizations

  • Air Force Research Laboratory

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Acousto-Optic Modulators
  • Agreements
  • Air Force
  • Air Force Research Laboratories
  • Alkali Metals
  • Atomic Beams
  • Beam Steering
  • Continuous Waves
  • Equations
  • Frequency
  • Lasers
  • Particle Trajectories
  • Particles
  • Scattering
  • Simulations
  • Steering
  • Trajectories

Fields of Study

  • Physics

Readers

  • Computational Fluid Dynamics (CFD)
  • Plasma Physics.
  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.

Technology Areas

  • Directed Energy