Temperature influence on mobility and charge density model of photovoltaic cells

abstract Photovoltaic (PV) devices that capture the energy provided by the sun have great potential as renewable energy sources. However, the input parameters such as the luminous intensity and temperature of the solar cells tend to influence the operating characteristics in the solar panels. The in...

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Main Authors: J.S.T. Souza, N.C.A. de Sousa
Format: Article
Language:Portuguese
Published: Sociedade Brasileira de Física
Series:Revista Brasileira de Ensino de Física
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1806-11172019000300417&lng=en&tlng=en
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spelling doaj-8aad9b83d0bf41338955740be0f1e3692020-11-25T02:32:15ZporSociedade Brasileira de FísicaRevista Brasileira de Ensino de Física1806-912641310.1590/1806-9126-rbef-2018-0272S1806-11172019000300417Temperature influence on mobility and charge density model of photovoltaic cellsJ.S.T. SouzaN.C.A. de Sousaabstract Photovoltaic (PV) devices that capture the energy provided by the sun have great potential as renewable energy sources. However, the input parameters such as the luminous intensity and temperature of the solar cells tend to influence the operating characteristics in the solar panels. The inherent physical processes that cannot be altered limit the efficiency of photovoltaic cells, as well as temperatures above the ideal value of operation. We propose a diode model to represent a PV cell, presenting good approximation for a commercial silicon cell. In this work we report the model with the aid of Coughey Thoma's equation to obtain the results, which indicate decrease in the mobility of loads and subsequently evaluation in terms of the load carrier diffusion lengths in regions with ideal temperatures between 293.15 K to 301.15 K (20 °C and 28 °C). Results were compared with local temperature between 298.15 K at 308.15 K (25 °C and 35 °C), in a region with a PV plant in operation in the West of Bahia.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1806-11172019000300417&lng=en&tlng=enPhotovoltaicCharge MobilityModelingTemperature
collection DOAJ
language Portuguese
format Article
sources DOAJ
author J.S.T. Souza
N.C.A. de Sousa
spellingShingle J.S.T. Souza
N.C.A. de Sousa
Temperature influence on mobility and charge density model of photovoltaic cells
Revista Brasileira de Ensino de Física
Photovoltaic
Charge Mobility
Modeling
Temperature
author_facet J.S.T. Souza
N.C.A. de Sousa
author_sort J.S.T. Souza
title Temperature influence on mobility and charge density model of photovoltaic cells
title_short Temperature influence on mobility and charge density model of photovoltaic cells
title_full Temperature influence on mobility and charge density model of photovoltaic cells
title_fullStr Temperature influence on mobility and charge density model of photovoltaic cells
title_full_unstemmed Temperature influence on mobility and charge density model of photovoltaic cells
title_sort temperature influence on mobility and charge density model of photovoltaic cells
publisher Sociedade Brasileira de Física
series Revista Brasileira de Ensino de Física
issn 1806-9126
description abstract Photovoltaic (PV) devices that capture the energy provided by the sun have great potential as renewable energy sources. However, the input parameters such as the luminous intensity and temperature of the solar cells tend to influence the operating characteristics in the solar panels. The inherent physical processes that cannot be altered limit the efficiency of photovoltaic cells, as well as temperatures above the ideal value of operation. We propose a diode model to represent a PV cell, presenting good approximation for a commercial silicon cell. In this work we report the model with the aid of Coughey Thoma's equation to obtain the results, which indicate decrease in the mobility of loads and subsequently evaluation in terms of the load carrier diffusion lengths in regions with ideal temperatures between 293.15 K to 301.15 K (20 °C and 28 °C). Results were compared with local temperature between 298.15 K at 308.15 K (25 °C and 35 °C), in a region with a PV plant in operation in the West of Bahia.
topic Photovoltaic
Charge Mobility
Modeling
Temperature
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1806-11172019000300417&lng=en&tlng=en
work_keys_str_mv AT jstsouza temperatureinfluenceonmobilityandchargedensitymodelofphotovoltaiccells
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