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  4. Efficient Analysis of Confined Guided Modes in Phoxonic Crystal Slabs
 
research article

Efficient Analysis of Confined Guided Modes in Phoxonic Crystal Slabs

Aram, Mohammad Hasan
•
Khorasani, Sina
2017
Journal of Lightwave Technology

Today's standard fabrication processes are just capable of manufacturing slab of photonic and phononic crystals, so an efficient method for analysis of these crystals is indispensable. Plane wave expansion (PWE) as a widely used method in studying photonic and phononic (phoxonic) crystals in full three dimensions is not suitable for slab analysis in its standard form, because of convergence and stability issues. Here, we propose a modification to this method which overcomes these limitations. This improved method can be utilized for calculation of both photonic and phononicmodes in phoxonic slabs. While in the standard threedimensional PWE, Fourier series are used to estimate the field dependence across the normal component of the slab, we expand the fields across the third dimension using eigenmodes of a plain unstructured slab. Despite its approximate nature, this approach is observed to be both much faster and more accurate than the conventional PWEmethod and can give a very accurate estimation of confined propagating modes. As an application example of the proposed method, we investigate a nonreciprocal photonic device. This device is a phoxonic slab waveguide, which changes modes of optical waves by elastic waves and can be used as an optical insulator or mode converter.

  • Details
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Type
research article
DOI
10.1109/Jlt.2017.2721999
Web of Science ID

WOS:000406290200015

Author(s)
Aram, Mohammad Hasan
Khorasani, Sina
Date Issued

2017

Publisher

IEEE Institute of Electrical and Electronics Engineers

Published in
Journal of Lightwave Technology
Volume

35

Issue

17

Start page

3734

End page

3742

Subjects

Phononic crystal

•

photo-elastic interaction

•

photonic crystal

•

phoxonic crystal

•

plane wave expansion

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPQM  
Available on Infoscience
September 5, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/140055
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