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Z-scan×Beam Propagation Method×Finite-Difference Time-Domain×Fourieroptik×
FagområdeOptikOptikOptikOptik
FamilieProcess / pipelineProcess / pipelineProcess / pipelineProcess / pipeline
Oprindelsesår1990197819661822
OphavspersonMansoor Sheik-Bahae, David Hagan, and Eric Van StrylandMichael Feit and John FleckKane YeeJoseph Fourier and Ernst Abbe
TypeMeasurement techniqueParaxial propagation algorithmFinite-difference algorithmSpectral decomposition method
Oprindelig kildeSheik-Bahae, M., Said, A. A., Wei, T. H., Hagan, D. J., & Van Stryland, E. W. (1990). Sensitive measurement of optical nonlinearities using a single beam. IEEE Journal of Quantum Electronics, 26(4), 760-769. DOI ↗Feit, M. D., & Fleck, J. A. (1978). Light propagation in graded-index optical fibers. Applied Optics, 17(24), 3990-3998. DOI ↗Yee, K. S. (1966). Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media. IEEE Transactions on Antennas and Propagation, 14(3), 302-307. DOI ↗Goodman, J. W. (1968). Introduction to Fourier Optics. McGraw-Hill. link ↗
AliasserZ-scan method, nonlinear refraction measurementBPM, paraxial approximation methodFDTD, Yee schemefrequency-domain optics, wave optics, diffraction theory
Relaterede3333
ResuméThe Z-scan technique is an experimental method for measuring nonlinear optical properties of materials, particularly third-order susceptibility and nonlinear absorption. Developed by Sheik-Bahae, Hagan, and Van Stryland in 1990, Z-scan uses a tightly focused laser beam and moves the sample along the beam propagation axis (z-axis), recording transmission variation to deduce nonlinear refraction and absorption coefficients with high sensitivity.The Beam Propagation Method is a computational technique for simulating the propagation of optical beams through slowly varying, weakly guiding structures. Developed by Feit and Fleck in 1978, BPM exploits the paraxial approximation to reduce the full vector wave equation to a scalar or vector envelope equation, enabling efficient simulation of waveguides, integrated optics, and photonic devices.The Finite-Difference Time-Domain method is a computational technique for solving Maxwell's equations by discretizing space and time on a grid. Introduced by Kane Yee in 1966, FDTD is a foundational approach in computational electrodynamics and optical simulation, enabling direct modeling of electromagnetic wave propagation through complex media.Fourier optics is a mathematical framework that analyzes optical systems and phenomena using Fourier transforms and frequency-domain methods. Grounded in Joseph Fourier's 1822 work on heat diffusion and Ernst Abbe's microscopy theory, this approach decomposes optical fields into plane waves or spatial frequencies, revealing how optical systems manipulate and filter these components to produce images and transmit information.
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ScholarGateSammenlign metoder: Z-scan · Beam Propagation Method · Finite-Difference Time-Domain · Fourier Optics. Hentet 2026-06-18 fra https://scholargate.app/da/compare