Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation

This work is based on the development of a theoretical model describing the drift and diffusion transport of photogenerated charge carriers and the impact of space charge on this transport in relation to the different physical phenomena characterizing the photovoltaic conversion in an inorganic sili...

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Main Authors: Azza Mohammed, Daaif Jabran, Chahid Abd Elhadi, Salah Mohammed, Belaaouad Said
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:E3S Web of Conferences
Subjects:
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/73/e3sconf_iccsre21_01024.pdf
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spelling doaj-96b4ab1380df4cfe821a89721ff0c1f32021-09-23T11:41:28ZengEDP SciencesE3S Web of Conferences2267-12422021-01-012970102410.1051/e3sconf/202129701024e3sconf_iccsre21_01024Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical SimulationAzza Mohammed0Daaif Jabran1Chahid Abd Elhadi2Salah MohammedBelaaouad Said3Laboratory Physical Chemistry of Materials, Faculty of Sciences Ben M’Sik, University Hassan IILaboratory Physical Chemistry of Materials, Faculty of Sciences Ben M’Sik, University Hassan IIRegional Center for Education and Training CRMEF-Beni-Mellal KhenifraLaboratory Physical Chemistry of Materials, Faculty of Sciences Ben M’Sik, University Hassan IIThis work is based on the development of a theoretical model describing the drift and diffusion transport of photogenerated charge carriers and the impact of space charge on this transport in relation to the different physical phenomena characterizing the photovoltaic conversion in an inorganic silicon-based cell. In a second step, we used a numerical solution of the transport differential equations based on the Runge-Kutta algorithm in the framework of the finite difference method, This led us to an electrical model of the photovoltaic cell and of the photo-generated currents by RLC circuit equipped with a diode modeling the direction of electron and hole transport and allowed us to study the relations between the optical and electrical properties of the cell, as well as the influence of the different concentrations of impurities used for the n-type and p-type doping of the silicon on the properties of absorption of the light photons, the spectral response as well as the conductivity, the open-circuit potential and the short-circuit current.https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/73/e3sconf_iccsre21_01024.pdfnumerical simulationelectrical modelingfinite difference methodsolar cell
collection DOAJ
language English
format Article
sources DOAJ
author Azza Mohammed
Daaif Jabran
Chahid Abd Elhadi
Salah Mohammed
Belaaouad Said
spellingShingle Azza Mohammed
Daaif Jabran
Chahid Abd Elhadi
Salah Mohammed
Belaaouad Said
Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
E3S Web of Conferences
numerical simulation
electrical modeling
finite difference method
solar cell
author_facet Azza Mohammed
Daaif Jabran
Chahid Abd Elhadi
Salah Mohammed
Belaaouad Said
author_sort Azza Mohammed
title Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
title_short Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
title_full Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
title_fullStr Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
title_full_unstemmed Theoretical Aspect of Physical Phenomena in Inorganic Photovoltaic Cells. Electrical Modeling and Numerical Simulation
title_sort theoretical aspect of physical phenomena in inorganic photovoltaic cells. electrical modeling and numerical simulation
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2021-01-01
description This work is based on the development of a theoretical model describing the drift and diffusion transport of photogenerated charge carriers and the impact of space charge on this transport in relation to the different physical phenomena characterizing the photovoltaic conversion in an inorganic silicon-based cell. In a second step, we used a numerical solution of the transport differential equations based on the Runge-Kutta algorithm in the framework of the finite difference method, This led us to an electrical model of the photovoltaic cell and of the photo-generated currents by RLC circuit equipped with a diode modeling the direction of electron and hole transport and allowed us to study the relations between the optical and electrical properties of the cell, as well as the influence of the different concentrations of impurities used for the n-type and p-type doping of the silicon on the properties of absorption of the light photons, the spectral response as well as the conductivity, the open-circuit potential and the short-circuit current.
topic numerical simulation
electrical modeling
finite difference method
solar cell
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/73/e3sconf_iccsre21_01024.pdf
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