Breakdown of Bose–Einstein photonic structure to produce sustainable energy

The Bose–Einstein photonic structure has been deconstructed and modelled using the MATLAB software to design a micro photovoltaic (PV) panel for producing clean energy. Bose–Einstein photon distribution theory suggests that under low-temperature conditions, photonic-band-gap state photons are induce...

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Main Author: Md. Faruque Hossain
Format: Article
Language:English
Published: Elsevier 2019-11-01
Series:Energy Reports
Online Access:http://www.sciencedirect.com/science/article/pii/S2352484718302087
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spelling doaj-a5889cd173b848a6804e82d1025dba8a2020-11-25T01:56:24ZengElsevierEnergy Reports2352-48472019-11-015202209Breakdown of Bose–Einstein photonic structure to produce sustainable energyMd. Faruque Hossain0Correspondence to: Department of Civil and Urban Engineering, New York University, 6 Metrotech Center, Brooklyn, NY 11201, USA.; Department of Civil and Urban Engineering, New York University, 6 Metrotech Center, Brooklyn, NY 11201, USA; Green Globe Technology, 4323 Colden Street 15L, Flushing, NY 11355, USAThe Bose–Einstein photonic structure has been deconstructed and modelled using the MATLAB software to design a micro photovoltaic (PV) panel for producing clean energy. Bose–Einstein photon distribution theory suggests that under low-temperature conditions, photonic-band-gap state photons are induced locally and remain steady as long-lived equilibrium particles called discrete energy state photons. Thus, I assume that once a photon is in an extreme relativistic thermal condition, it will not obey Bose–Einstein discrete energy state theory. The photonic band gap volume will be naturally increased within its vicinity as a result of the extreme relativistic thermal conditions, and the discrete energy state photon will be agitated by extreme relativistic thermal fluctuations. Consequently, the Bose–Einstein photonic dormant state will be broken down within its region and will create a multiple number of photons. Simply, a single discrete energy state photon will be transformed from the crossover phenomenon equilibrium state to a non-equilibrium state to exponentially create multiple photons, here named Hossain nonequilibrium photons ( HnP−). Calculations reveal that if only 0.00008% of a building’s exterior skin curtain wall is used as a micro PV panel to transform Bose–Einstein equilibrium photons into HnP−, it will produce enough clean energy to satisfy the total energy demand of a building. Keywords: Bose–Einstein photonic structure, Extreme relativistic condition, Thermal fluctuation, Non-equilibrium photon production, And clean energy conversionhttp://www.sciencedirect.com/science/article/pii/S2352484718302087
collection DOAJ
language English
format Article
sources DOAJ
author Md. Faruque Hossain
spellingShingle Md. Faruque Hossain
Breakdown of Bose–Einstein photonic structure to produce sustainable energy
Energy Reports
author_facet Md. Faruque Hossain
author_sort Md. Faruque Hossain
title Breakdown of Bose–Einstein photonic structure to produce sustainable energy
title_short Breakdown of Bose–Einstein photonic structure to produce sustainable energy
title_full Breakdown of Bose–Einstein photonic structure to produce sustainable energy
title_fullStr Breakdown of Bose–Einstein photonic structure to produce sustainable energy
title_full_unstemmed Breakdown of Bose–Einstein photonic structure to produce sustainable energy
title_sort breakdown of bose–einstein photonic structure to produce sustainable energy
publisher Elsevier
series Energy Reports
issn 2352-4847
publishDate 2019-11-01
description The Bose–Einstein photonic structure has been deconstructed and modelled using the MATLAB software to design a micro photovoltaic (PV) panel for producing clean energy. Bose–Einstein photon distribution theory suggests that under low-temperature conditions, photonic-band-gap state photons are induced locally and remain steady as long-lived equilibrium particles called discrete energy state photons. Thus, I assume that once a photon is in an extreme relativistic thermal condition, it will not obey Bose–Einstein discrete energy state theory. The photonic band gap volume will be naturally increased within its vicinity as a result of the extreme relativistic thermal conditions, and the discrete energy state photon will be agitated by extreme relativistic thermal fluctuations. Consequently, the Bose–Einstein photonic dormant state will be broken down within its region and will create a multiple number of photons. Simply, a single discrete energy state photon will be transformed from the crossover phenomenon equilibrium state to a non-equilibrium state to exponentially create multiple photons, here named Hossain nonequilibrium photons ( HnP−). Calculations reveal that if only 0.00008% of a building’s exterior skin curtain wall is used as a micro PV panel to transform Bose–Einstein equilibrium photons into HnP−, it will produce enough clean energy to satisfy the total energy demand of a building. Keywords: Bose–Einstein photonic structure, Extreme relativistic condition, Thermal fluctuation, Non-equilibrium photon production, And clean energy conversion
url http://www.sciencedirect.com/science/article/pii/S2352484718302087
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