Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition

In this work, a detailed description of the various steps involved in the fabrication of high-efficiency hydrogenated amorphous-silicon cells using plasma-enhanced chemical vapor deposition, and a novel shadow masking technique is presented. The influence of the different masking methods on the cell...

Full description

Bibliographic Details
Main Authors: Kawtar Belrhiti Alaoui, Saida Laalioui, Badr Ikken, Abdelkader Outzourhit
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-11-01
Series:Frontiers in Mechanical Engineering
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmech.2020.560385/full
id doaj-9ca2c787da984c9189879673c45ff191
record_format Article
spelling doaj-9ca2c787da984c9189879673c45ff1912020-11-25T04:12:06ZengFrontiers Media S.A.Frontiers in Mechanical Engineering2297-30792020-11-01610.3389/fmech.2020.560385560385Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor DepositionKawtar Belrhiti Alaoui0Kawtar Belrhiti Alaoui1Saida Laalioui2Saida Laalioui3Badr Ikken4Abdelkader Outzourhit5Thin Film Photovoltaic Laboratory, Green Energy Park, Electric and Photovoltaic Department, Institute for Solar Energy and New Energies (IRESEN), Benguerir, MoroccoNanomaterials for Energy and Environment Laboratory (N2EL), Faculty of Sciences Semlalia, Department of Physics, Cadi Ayad University, Marrakech, MoroccoThin Film Photovoltaic Laboratory, Green Energy Park, Electric and Photovoltaic Department, Institute for Solar Energy and New Energies (IRESEN), Benguerir, MoroccoNanomaterials for Energy and Environment Laboratory (N2EL), Faculty of Sciences Semlalia, Department of Physics, Cadi Ayad University, Marrakech, MoroccoThin Film Photovoltaic Laboratory, Green Energy Park, Electric and Photovoltaic Department, Institute for Solar Energy and New Energies (IRESEN), Benguerir, MoroccoNanomaterials for Energy and Environment Laboratory (N2EL), Faculty of Sciences Semlalia, Department of Physics, Cadi Ayad University, Marrakech, MoroccoIn this work, a detailed description of the various steps involved in the fabrication of high-efficiency hydrogenated amorphous-silicon cells using plasma-enhanced chemical vapor deposition, and a novel shadow masking technique is presented. The influence of the different masking methods on the cell parameters was experimentally investigated. Particularly, the short-circuit current density (Jsc), the fill factor, the open circuit voltage (Voc), and the resistive losses indicated by the shunt (Rsh) and series (Rs) resistances were measured in order to assess the performance of the cells as a function of the masks used during the cell fabrication process. The results indicate that the use of a masking technique where the p-i-n structure was first deposited over the whole surface of a 20 cm2 × 20 cm2 substrate, followed by the deposition, deposits the back contact through a metal mask, and by the ultrasonic soldering of indium to access the front contact is a good alternative to laser scribing in the laboratory scale. Indeed, a record efficiency of 8.8%, with a short-circuit current density (Jsc) of 15.6 mA/cm2, an open-circuit voltage (Voc) of 0.8 V, and a fill factor of 66.07% and low resistive losses were obtained by this technique. Furthermore, a spectroscopic ellipsometry investigation of the uniformity of the film properties (thickness, band gap, and refractive index) on large-area substrates, which is crucial to mini-module fabrication on a single substrate and for heterojunction development, was performed using the optimal cell deposition recipes. It was found that the relative variations of the band gap, thickness, and refractive index n are less than 1% suggesting that the samples are uniform over the 20 cm2 × 20 cm2 substrate area used in this work.https://www.frontiersin.org/articles/10.3389/fmech.2020.560385/fullhydrogenated amorphous-siliconthin-filmsfabrication techniquessolar cellsplasma-enhanced CVDelectrical characterization
collection DOAJ
language English
format Article
sources DOAJ
author Kawtar Belrhiti Alaoui
Kawtar Belrhiti Alaoui
Saida Laalioui
Saida Laalioui
Badr Ikken
Abdelkader Outzourhit
spellingShingle Kawtar Belrhiti Alaoui
Kawtar Belrhiti Alaoui
Saida Laalioui
Saida Laalioui
Badr Ikken
Abdelkader Outzourhit
Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
Frontiers in Mechanical Engineering
hydrogenated amorphous-silicon
thin-films
fabrication techniques
solar cells
plasma-enhanced CVD
electrical characterization
author_facet Kawtar Belrhiti Alaoui
Kawtar Belrhiti Alaoui
Saida Laalioui
Saida Laalioui
Badr Ikken
Abdelkader Outzourhit
author_sort Kawtar Belrhiti Alaoui
title Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
title_short Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
title_full Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
title_fullStr Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
title_full_unstemmed Promising Shadow Masking Technique for the Deposition of High-Efficiency Amorphous Silicon Solar Cells Using Plasma-Enhanced Chemical Vapor Deposition
title_sort promising shadow masking technique for the deposition of high-efficiency amorphous silicon solar cells using plasma-enhanced chemical vapor deposition
publisher Frontiers Media S.A.
series Frontiers in Mechanical Engineering
issn 2297-3079
publishDate 2020-11-01
description In this work, a detailed description of the various steps involved in the fabrication of high-efficiency hydrogenated amorphous-silicon cells using plasma-enhanced chemical vapor deposition, and a novel shadow masking technique is presented. The influence of the different masking methods on the cell parameters was experimentally investigated. Particularly, the short-circuit current density (Jsc), the fill factor, the open circuit voltage (Voc), and the resistive losses indicated by the shunt (Rsh) and series (Rs) resistances were measured in order to assess the performance of the cells as a function of the masks used during the cell fabrication process. The results indicate that the use of a masking technique where the p-i-n structure was first deposited over the whole surface of a 20 cm2 × 20 cm2 substrate, followed by the deposition, deposits the back contact through a metal mask, and by the ultrasonic soldering of indium to access the front contact is a good alternative to laser scribing in the laboratory scale. Indeed, a record efficiency of 8.8%, with a short-circuit current density (Jsc) of 15.6 mA/cm2, an open-circuit voltage (Voc) of 0.8 V, and a fill factor of 66.07% and low resistive losses were obtained by this technique. Furthermore, a spectroscopic ellipsometry investigation of the uniformity of the film properties (thickness, band gap, and refractive index) on large-area substrates, which is crucial to mini-module fabrication on a single substrate and for heterojunction development, was performed using the optimal cell deposition recipes. It was found that the relative variations of the band gap, thickness, and refractive index n are less than 1% suggesting that the samples are uniform over the 20 cm2 × 20 cm2 substrate area used in this work.
topic hydrogenated amorphous-silicon
thin-films
fabrication techniques
solar cells
plasma-enhanced CVD
electrical characterization
url https://www.frontiersin.org/articles/10.3389/fmech.2020.560385/full
work_keys_str_mv AT kawtarbelrhitialaoui promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
AT kawtarbelrhitialaoui promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
AT saidalaalioui promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
AT saidalaalioui promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
AT badrikken promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
AT abdelkaderoutzourhit promisingshadowmaskingtechniqueforthedepositionofhighefficiencyamorphoussiliconsolarcellsusingplasmaenhancedchemicalvapordeposition
_version_ 1724416040296775680