Analytical Study of Artificial Dielectrics Composed of Non-Aligned Layers

Master Thesis (2017)
Author(s)

Cantika Cantika Felita (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Contributor(s)

D. Cavallo – Mentor

A Neto – Graduation committee member

Rob Remis – Graduation committee member

Faculty
Electrical Engineering, Mathematics and Computer Science
Copyright
© 2017 Cantika Cantika Felita
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 Cantika Cantika Felita
Graduation Date
30-08-2017
Awarding Institution
Delft University of Technology
Programme
['Electrical Engineering']
Faculty
Electrical Engineering, Mathematics and Computer Science
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Abstract

In this work, the analytical models to describe artificial dielectric layers (ADLs), when a lateral shift between layers is present, is presented. The alternate lateral displacement between layers is an important parameter to engineer the desired effective electromagnetic properties of the equivalent homogeneous material realized with the ADLs. More specifically, the equivalent dielectric constants that can be realized by alternatively shifting the layers are higher compared to the aligned case. Closed-form expressions are derived for the equivalent layer reactance that includes the higher-order interaction between shifted layers. Furthermore, the effect of finite conductivity of the metal patches is studied and included to the extended versions of the formulas. The given analytical formulas can be used to derive an equivalent circuit model that describes the scattering parameters of a plane wave impinging on a slab composed by an arbitrary finite number of metal layers. To aid the design of artificial dielectric slabs, the effective permittivity and permeability tensors are also retrieved from the scattering parameters.

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