Absorption enhanced thin‐film solar cells using fractal nano‐structures

Abstract In this article, a new structure for development of thin film solar cells is proposed in which elements with fractal shapes are integrated inside the cell to enhance its performance in a wide range of wavelengths. Two different structures are studied. In the first structure, a metallic frac...

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Main Authors: Mohammad Ali Shameli, Leila Yousefi
Format: Article
Language:English
Published: Wiley 2021-10-01
Series:IET Optoelectronics
Online Access:https://doi.org/10.1049/ote2.12036
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spelling doaj-8d85cc27ed4c46669820008e1b7648e12021-09-12T19:57:04ZengWileyIET Optoelectronics1751-87681751-87762021-10-0115524825310.1049/ote2.12036Absorption enhanced thin‐film solar cells using fractal nano‐structuresMohammad Ali Shameli0Leila Yousefi1School of Electrical and Computer Engineering University of Tehran Tehran IranSchool of Electrical and Computer Engineering University of Tehran Tehran IranAbstract In this article, a new structure for development of thin film solar cells is proposed in which elements with fractal shapes are integrated inside the cell to enhance its performance in a wide range of wavelengths. Two different structures are studied. In the first structure, a metallic fractal nano‐carpet is integrated inside the silicon layer in order to trap and absorb sunlight by exciting surface plasmon polaritons and local surface plasmons at different wavelengths. Numerical analysis shows that this technique increases the short circuit current provided by the cell by a factor of 2.40 for both TM and TE polarisations of the incident light. The second structure has an active layer shaped as a fractal structure, and absorbs sunlight through Mie and Fabry‐Perot resonances occurring at different wavelengths. The short circuit current enhancement for this structure is 2.97 for both TM and TE polarisations of the incident light, representing a significant improvement when compared with the previous works.https://doi.org/10.1049/ote2.12036
collection DOAJ
language English
format Article
sources DOAJ
author Mohammad Ali Shameli
Leila Yousefi
spellingShingle Mohammad Ali Shameli
Leila Yousefi
Absorption enhanced thin‐film solar cells using fractal nano‐structures
IET Optoelectronics
author_facet Mohammad Ali Shameli
Leila Yousefi
author_sort Mohammad Ali Shameli
title Absorption enhanced thin‐film solar cells using fractal nano‐structures
title_short Absorption enhanced thin‐film solar cells using fractal nano‐structures
title_full Absorption enhanced thin‐film solar cells using fractal nano‐structures
title_fullStr Absorption enhanced thin‐film solar cells using fractal nano‐structures
title_full_unstemmed Absorption enhanced thin‐film solar cells using fractal nano‐structures
title_sort absorption enhanced thin‐film solar cells using fractal nano‐structures
publisher Wiley
series IET Optoelectronics
issn 1751-8768
1751-8776
publishDate 2021-10-01
description Abstract In this article, a new structure for development of thin film solar cells is proposed in which elements with fractal shapes are integrated inside the cell to enhance its performance in a wide range of wavelengths. Two different structures are studied. In the first structure, a metallic fractal nano‐carpet is integrated inside the silicon layer in order to trap and absorb sunlight by exciting surface plasmon polaritons and local surface plasmons at different wavelengths. Numerical analysis shows that this technique increases the short circuit current provided by the cell by a factor of 2.40 for both TM and TE polarisations of the incident light. The second structure has an active layer shaped as a fractal structure, and absorbs sunlight through Mie and Fabry‐Perot resonances occurring at different wavelengths. The short circuit current enhancement for this structure is 2.97 for both TM and TE polarisations of the incident light, representing a significant improvement when compared with the previous works.
url https://doi.org/10.1049/ote2.12036
work_keys_str_mv AT mohammadalishameli absorptionenhancedthinfilmsolarcellsusingfractalnanostructures
AT leilayousefi absorptionenhancedthinfilmsolarcellsusingfractalnanostructures
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