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Simulation of Phonon-Polariton Generation and Propagation in Ferroelectric LiNbO3 Crystals

Published online by Cambridge University Press:  01 February 2011

David W. Ward
Affiliation:
The Massachusetts Institute of Technology, Cambridge, MA 02139, USA
Eric Statz
Affiliation:
The Massachusetts Institute of Technology, Cambridge, MA 02139, USA
Nikolay Stoyanov
Affiliation:
The Massachusetts Institute of Technology, Cambridge, MA 02139, USA
Keith A. Nelson
Affiliation:
The Massachusetts Institute of Technology, Cambridge, MA 02139, USA
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Abstract

We simulate propagation of phonon-polaritons (admixtures of polar lattice vibrations and electromagnetic waves) in ferroelectric LiNbO3 with a model that consists of a spatially periodic array of harmonic oscillators coupled to THz electromagnetic waves through an electric dipole moment. We show that when this model is combined with the auxiliary differential equation method of finite difference time domain (FDTD) simulations, the salient features of phonon-polaritons may be illustrated. Further, we introduce second order nonlinear coupling to an optical field to demonstrate phonon-polariton generation by impulsive stimulated Raman scattering (ISRS). The phonon-polariton dispersion relation in bulk ferroelectric LiNbO3 is determined from simulation.

Type
Research Article
Copyright
Copyright © Materials Research Society 2004

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References

REFERENCES

1 Born, M. and Wolf, E., Principles of optics; electromagnetic theory of propagation, interference, and diffraction of light (Pergamon Press, Oxford, New York,, 1975).Google Scholar
2 Brennan, C., Ph.D Thesis (Massachusetts Institute of Technology, Cambridge, 1997).Google Scholar
3 Taflove, A., Hagness., S. C., Computational electrodynamics: the finite-difference time-domain method (Artech House, Boston, 2000).Google Scholar
4 Stoyanov, N. S., Ward, D. W., Feurer, T., and Nelson, K. A., “Terahertz polariton propagation in patterned materials,” Nature Materials 1, 95 (2002).Google Scholar
5 Barker, J. A. S. and Loudon, R., “Dielectric Properties and Optical Phonons in LiNbO3,” Physical Review 158, 433 (1967).Google Scholar
6 Yan, Y. X., Gamble, E. B., and Nelson, K. A., “Impulsive Stimulated Scattering - General Importance in Femtosecond Laser-Pulse Interactions with Matter, and Spectroscopic Applications,” Journal of Chemical Physics 83, 5391 (1985).Google Scholar
7 Auston, D. H. and Nuss, M. C., “Electrooptic Generation and Detection of Femtosecond Electrical Transients,” Ieee Journal of Quantum Electronics 24, 184 (1988).Google Scholar