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Michigan State University

Topology optimization of metamaterials and applications to RF component design

Abstract

dc:description

Metamaterials are artificially engineered macroscopic composites that are designed to produce a combination of permittivity and permeability properties that are not readily available in nature. The creation of metamaterial media relies on embedding metallic or dielectric inclusions into a host medium, with the most common metallic inclusions being split ring resonators and their derivatives. Unfortunately, these resonant structures have limited flexibility since their design involves very few parameters such as ring radii and slot widths, which do not allow for much tuning of the material properties. Additionally, the performance of these resonant structures is dependent on the orientation of the exciting electric and magnetic fields. When placed next to a device, the effects of mutual coupling usually lead to an undesirable performance of the combined structure, which is coined a ``metamaterial-inspired device". Therefore, additional tuning of the resonant structure becomes necessary to achieve the desired performance of the metamaterial-inspired device.This dissertation introduces a new design methodology that can be used to synthesize new resonant structures for the design of metamaterial media. By using a pixelization approach with a binary optimizer such as a genetic algorithm, it is shown that it is possible to create resonant structures quite different from SRRs and with improved flexibility. This dissertation also introduces an in situ optimization technique as an effective means to naturally compensate for the mutual coupling between the metamaterial elements and the surrounding structure. Using a combination of the pixelization approach and the in situ optimization technique, it is shown that it is possible to create metamaterial-inspired RF components that outperform existing RF components. Designs and prototypes of various metamaterial-inspired miniaturized patch antennas, loop antennas, folded monopole antennas, ultra-compact broadband waveguide filters, and widely tunable resonant structures that are easy to fabricate and at a low cost are presented.

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Ouedraogo, Raoul Ouatagom
Contributors dc:contributor
  • Rothwell, Edward J.
  • Diaz, Alejandro
  • Kempel, Leo
  • Balasubramaniam, Shanker
  • Wei, Guowei

Subjects

dc:subject × 4

Rights

dc:rights
Statement dc:rights
  • In Copyright
Language dc:language
English

Identifiers

dc:identifier.*
Identifier
etd:10
isbn:9781124858951
isbn:1124858954
oclc:931849232
umi:3469666
local:Ouedraogo_grad.msu_0128D_10608
OAI identifier oai:identifier
oai:d.lib.msu.edu:etd_10

Chain of custody

source
Harvested from
Michigan State University
Base URL
d.lib.msu.edu/oai
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Ouedraogo, Raoul Ouatagom. Topology optimization of metamaterials and applications to RF component design. 2011. https://doi.org/doi:10.25335/2qty-7b94