Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming

The goal of this paper is to show that super-gain optical parametric amplification can be achieved even in a small micro-resonator using high-intensity ultrashort pump waves, provided that the frequencies of the ultrashort pulses are tuned to maximize the intracavity magnitude of the wave to be ampl...

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Main Authors: Özüm Emre Aşırım, Mustafa Kuzuoğlu
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/5/1770
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spelling doaj-2332de7587994141b1d54a585af2d5d92020-11-25T01:40:48ZengMDPI AGApplied Sciences2076-34172020-03-01105177010.3390/app10051770app10051770Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear ProgrammingÖzüm Emre Aşırım0Mustafa Kuzuoğlu1Department of Electrical and Electronics Engineering, Middle East Technical University, 06800 Ankara, TurkeyDepartment of Electrical and Electronics Engineering, Middle East Technical University, 06800 Ankara, TurkeyThe goal of this paper is to show that super-gain optical parametric amplification can be achieved even in a small micro-resonator using high-intensity ultrashort pump waves, provided that the frequencies of the ultrashort pulses are tuned to maximize the intracavity magnitude of the wave to be amplified, which we call the stimulus wave. In order to accomplish this, we have performed a dispersion analysis via computational modeling of the electric polarization density in terms of the non-linear electron cloud motion and we have concurrently solved the electric polarization density and the wave equation for the electric field. Based on a series of non-linear programming-integrated finite difference time-domain simulations, we have identified the optimal pump wave frequencies that simultaneously maximize the stored electric energy density and the polarization density inside a micro-resonator by using the Broyden−Fletcher−Goldfarb−Shanno (BFGS) optimization algorithm. When the intracavity energy and the polarization density (which acts as an energy coupling coefficient) are simultaneously high, an input wave can be strongly amplified by efficiently drawing energy from a highly energized cavity. Therefore, we propose that micrometer-scale achievement of super-gain optical parametric amplification is possible in a micro-resonator via high-intensity ultrashort “pump wave” pulses, by determining the optimal frequencies that concurrently maximize the stored electric energy density and the polarization density in a dielectric interaction medium.https://www.mdpi.com/2076-3417/10/5/1770optical parametric amplificationnon-linear wave mixingmicro-resonatoroptimization
collection DOAJ
language English
format Article
sources DOAJ
author Özüm Emre Aşırım
Mustafa Kuzuoğlu
spellingShingle Özüm Emre Aşırım
Mustafa Kuzuoğlu
Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
Applied Sciences
optical parametric amplification
non-linear wave mixing
micro-resonator
optimization
author_facet Özüm Emre Aşırım
Mustafa Kuzuoğlu
author_sort Özüm Emre Aşırım
title Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
title_short Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
title_full Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
title_fullStr Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
title_full_unstemmed Super-Gain Optical Parametric Amplification in Dielectric Micro-Resonators via BFGS Algorithm-Based Non-Linear Programming
title_sort super-gain optical parametric amplification in dielectric micro-resonators via bfgs algorithm-based non-linear programming
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-03-01
description The goal of this paper is to show that super-gain optical parametric amplification can be achieved even in a small micro-resonator using high-intensity ultrashort pump waves, provided that the frequencies of the ultrashort pulses are tuned to maximize the intracavity magnitude of the wave to be amplified, which we call the stimulus wave. In order to accomplish this, we have performed a dispersion analysis via computational modeling of the electric polarization density in terms of the non-linear electron cloud motion and we have concurrently solved the electric polarization density and the wave equation for the electric field. Based on a series of non-linear programming-integrated finite difference time-domain simulations, we have identified the optimal pump wave frequencies that simultaneously maximize the stored electric energy density and the polarization density inside a micro-resonator by using the Broyden−Fletcher−Goldfarb−Shanno (BFGS) optimization algorithm. When the intracavity energy and the polarization density (which acts as an energy coupling coefficient) are simultaneously high, an input wave can be strongly amplified by efficiently drawing energy from a highly energized cavity. Therefore, we propose that micrometer-scale achievement of super-gain optical parametric amplification is possible in a micro-resonator via high-intensity ultrashort “pump wave” pulses, by determining the optimal frequencies that concurrently maximize the stored electric energy density and the polarization density in a dielectric interaction medium.
topic optical parametric amplification
non-linear wave mixing
micro-resonator
optimization
url https://www.mdpi.com/2076-3417/10/5/1770
work_keys_str_mv AT ozumemreasırım supergainopticalparametricamplificationindielectricmicroresonatorsviabfgsalgorithmbasednonlinearprogramming
AT mustafakuzuoglu supergainopticalparametricamplificationindielectricmicroresonatorsviabfgsalgorithmbasednonlinearprogramming
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