15 November 2020 Transmission matrix method modeling of experimental results of electromagnetic shielding effectiveness of DNA-conductive nanoparticle composites
James G. Grote, Charles E. Rogers, Michael M. Salour
Author Affiliations +
Abstract

A transmission matrix method (TMM) commonly used for modeling the electromagnetic properties of multilayered biopolymer/conductive nanoparticle composites is presented, which predicts the behavior of the experimental results of the electromagnetic shielding effectiveness of a deoxyribonucleic acid-silver nanoparticle composite but falls short for accurately predicting the absolute shielding effectiveness. The versatility of the model can handle metamaterials, various incident angles, both TE and TM polarizations, and single and multilayer structures with complex and dispersive permittivity and permeability. We present the simulated results for a single-layer slab using the TMM along with the experimental results. Parametric studies are conducted with the model to investigate the reflection and transmission performance for single-layer slabs by varying the loss tangent, dielectric constant, incident angle, and thickness parameters.

© 2020 Society of Photo-Optical Instrumentation Engineers (SPIE) 1934-2608/2020/$28.00 © 2020 SPIE
James G. Grote, Charles E. Rogers, and Michael M. Salour "Transmission matrix method modeling of experimental results of electromagnetic shielding effectiveness of DNA-conductive nanoparticle composites," Journal of Nanophotonics 14(4), 046008 (15 November 2020). https://doi.org/10.1117/1.JNP.14.046008
Received: 19 January 2020; Accepted: 30 September 2020; Published: 15 November 2020
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CITATIONS
Cited by 2 scholarly publications.
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KEYWORDS
Composites

Electromagnetism

Dielectrics

Multilayers

Nanoparticles

Dielectric polarization

Waveguides

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