Accurate description of optical precursors and their relation to weak-field coherent optical transients
William R. LeFew, Stephanos Venakides, and Daniel J. Gauthier

TL;DR
This paper provides an exact and asymptotic analysis of optical precursors in dispersive media, showing their persistence and frequency chirp, and suggests they have been observed in past experiments.
Contribution
It offers the first exact evaluation of optical precursor fields in a dilute resonant medium and compares it with asymptotic methods, clarifying their properties and observability.
Findings
Optical precursors can last for many nanoseconds.
Chirp in precursor frequency can cause beats in transmitted intensity.
Excellent agreement between exact and asymptotic solutions.
Abstract
We study theoretically the propagation of a step-modulated optical field as it passes through a dispersive dielectric made up of a dilute collection of oscillators characterized by a single narrow-band resonance. The propagated field is given in terms of an integral of a Fourier type, which cannot be evaluated even for simple models of the dispersive dielectric. The fact that the oscillators have a low number density (dilute medium) and have a narrow-band resonance allows us to simplify the integrand. In this case, the integral can be evaluated exactly, although it is not possible using this method to separate out the transient part of the propagated field known as optical precursors. We also use an asymptotic method (saddle-point method) to evaluate the integral. The contributions to the integral related to the saddle-points of the integrand give rise to the optical precursors. We…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Quantum optics and atomic interactions · Advanced Fiber Laser Technologies
