Spatial effects in intrinsic optical bistability

Joseph W. Haus, Li Wang, Michael Scalora, and Charles M. Bowden
Phys. Rev. A 38, 4043 – Published 1 October 1988
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Abstract

Using the nonlinear oscillator model as a prototype medium exhibiting intrinsic optical bistability, we investigate the inhomogeneous absorption of the electromagnetic field. The forward- and backward-field amplitudes and diffraction effects are retained in the mathematical description. Analytic results are given in the limit of plane-wave propagation under steady-state conditions. The transmitted and reflected intensity exhibit a structure that is determined by the spatial inhomogeneity of the absorption in the longitudinal direction. The transmitted intensity has a structure that is dependent on the length of the medium. The reflected intensity has an interference structure from light reflected at the front surface and the internal boundary separating a high-polarization from a low-polarization branch. A degenerate-four-wave-mixing experiment is predicted to be a very sensitive probe of the internal boundary and the interference between the forward and backward field. The phase-conjugate signal develops large oscillations as the input field is varied. Numerical results for diffraction effects are also given, and we find that the plane-wave results for the center of the beam remain reliable down to Fresnel numbers of order unity and in media that are smaller than the linear absorption length.

  • Received 16 November 1987

DOI:https://doi.org/10.1103/PhysRevA.38.4043

©1988 American Physical Society

Authors & Affiliations

Joseph W. Haus, Li Wang, and Michael Scalora

  • Department of Physics, Rensselaer Polytechnic Institute, Troy, New York 12180-3590

Charles M. Bowden

  • Research Directorate, Research, Development, and Engineering Center, U.S. Army Missile Command, Redstone Arsenal, Alabama 35898-5248

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Issue

Vol. 38, Iss. 8 — October 1988

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