Startseite Physical and materials aspects of photonic crystals for microwaves and millimetre waves
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Physical and materials aspects of photonic crystals for microwaves and millimetre waves

  • Rados Gajic , Friedemar Kuchar EMAIL logo , Ronald Meisels , Jelena Radovanovic , Kurt Hingerl , Javad Zarbakhsh , Jürgen Stampfl und Alexander Woesz
Veröffentlicht/Copyright: 8. Februar 2022
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Abstract

Experimental and numerical results on photonic crystals are presented for the frequency range 26–60 GHz. The material used is alumina where two techniques have been applied for fabricating the photonic crystals: manual assembly of alumina rods and rapid prototyping. The observed positions of the fundamental and higher photonic band gaps are in excellent agreement with the calculated results. A new type of defect in the 3D woodpile structure, is created by inserting interstitial rods. As a new 2D structure a square parquet lattice is investigated. The concept of a negative index of refraction is adressed including a model calculation and an experimental demonstration by the transmission through a slab of a 2D photonic crystal.


Univ. Prof. Dr. Friedemar Kuchar Institute of Physics, University Leoben A-8700 Leoben, Austria Tel.: +43 3842 402 4600 Fax: +43 3942 402 4602 www: www.unileoben.ac.at/institute/phywww.htm

Dedicated to Professor Dr. Dr. h. c. Franz Jeglitsch on the occasion of his 70th birthday


  1. This work has been supported by FWF, Austria, project No. 15513, and the Serbian Ministry of science, project No. 1469.

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Received: 2004-03-29
Accepted: 2004-04-29
Published Online: 2022-02-08

© 2004 Carl Hanser Verlag, München

Heruntergeladen am 16.11.2025 von https://www.degruyterbrill.com/document/doi/10.1515/ijmr-2004-0118/html
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