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Optics Letters

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  • Vol. 28, Iss. 7 — Apr. 1, 2003
  • pp: 513–515

Local spectral time-domain method for electromagnetic wave propagation

Gang Bao, G. W. Wei, and Shan Zhao  »View Author Affiliations


Optics Letters, Vol. 28, Issue 7, pp. 513-515 (2003)
http://dx.doi.org/10.1364/OL.28.000513


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Abstract

We explore the feasibility of using a local spectral time-domain (LSTD) method to solve Maxwell’s equations that arise in optical and electromagnetic applications. The discrete singular convolution (DSC) algorithm is implemented in the LSTD method for spatial derivatives. Fourier analysis of the dispersive error of the DSC algorithm indicates that its grid density requirement for accurate simulations can be as low as approximately two grid points per wavelength. The analysis is further confirmed by numerical experiments. Our study reveals that the LSTD method has the potential to yield high resolution for solving large-scale electromagnetic problems.

© 2003 Optical Society of America

OCIS Codes
(000.4430) General : Numerical approximation and analysis
(230.7370) Optical devices : Waveguides
(290.5820) Scattering : Scattering measurements

Citation
Gang Bao, G. W. Wei, and Shan Zhao, "Local spectral time-domain method for electromagnetic wave propagation," Opt. Lett. 28, 513-515 (2003)
http://www.opticsinfobase.org/ol/abstract.cfm?URI=ol-28-7-513


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