A Unified Approach for Determining Optical and Quantum Multilayer Thin Film Reflectance and Transmittance

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SFRE3O0G

Enhanced quantum imaging for optical and multivariable thermal film transmittance. Advances in optical and quantum physics studies.

A Unified Approach for Determining Optical and Quantum Multilayer Thin Film Reflectance and Transmittance

Richard P. Bocker
Richard P. Bocker San Diego State University
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Abstract

In this paper we present a unified approach for determining the reflectance and transmittance properties of single-layer and multilayer optical and quantum thin-film structures using a unified set of equations based on the similarity of classical Maxwell and newly formulated relativistic Dirac vector field equations. A review of these field equations and the corresponding wave equations is presented. Electromagnetic plane-wave and quantum mechanical matter-wave solutions that satisfy these equations and their properties are reviewed. Single-layer optical and quantum thin film analyses lead to a unified set of analytical equations that predict their reflectance and transmittance characteristics. A unified theory conversion table describes how to convert classical electrodynamic quantities into relativistic quantum mechanical quantities to use a set of unified equations. The unified approach was extended to multilayer optical and quantum mechanical thin-film structures. Numerical results are presented for single-layer and multilayer optical and quantum thin film architectures. MATLAB software was employed for computations and graphics.

A Unified Approach for Determining Optical and Quantum Multilayer Thin Film Reflectance and Transmittance

In this paper we present a unified approach for determining the reflectance and transmittance properties of single-layer and multilayer optical and quantum thin-film structures using a unified set of equations based on the similarity of classical Maxwell and newly formulated relativistic Dirac vector field equations. A review of these field equations and the corresponding wave equations is presented. Electromagnetic plane-wave and quantum mechanical matter-wave solutions that satisfy these equations and their properties are reviewed. Single-layer optical and quantum thin film analyses lead to a unified set of analytical equations that predict their reflectance and transmittance characteristics. A unified theory conversion table describes how to convert classical electrodynamic quantities into relativistic quantum mechanical quantities to use a set of unified equations. The unified approach was extended to multilayer optical and quantum mechanical thin-film structures. Numerical results are presented for single-layer and multilayer optical and quantum thin film architectures. MATLAB software was employed for computations and graphics.

Richard P. Bocker
Richard P. Bocker San Diego State University

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Richard P. Bocker. 2026. “. Global Journal of Science Frontier Research – A: Physics & Space Science GJSFR-A Volume 25 (GJSFR Volume 25 Issue A1): .

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Crossref Journal DOI 10.17406/GJSFR

Print ISSN 0975-5896

e-ISSN 2249-4626

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A Unified Approach for Determining Optical and Quantum Multilayer Thin Film Reflectance and Transmittance

Richard P. Bocker
Richard P. Bocker San Diego State University

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