Investigations on the mechanical properties ...
Document type :
Article dans une revue scientifique
Title :
Investigations on the mechanical properties of the elementary thin films composing a CuIn1−xGaxSe2 solar cell using the nano indentation technique.
Author(s) :
Abib, Hocine [Auteur]
Université Aboubekr Belkaid - University of Belkaïd Abou Bekr [Tlemcen]
Iost, Alain [Auteur]
Mechanics surfaces and materials processing [MSMP]
Montagne, Alex [Auteur]
Mechanics surfaces and materials processing [MSMP]
Rahmoun, Khadidja [Auteur]
Université Aboubekr Belkaid - University of Belkaïd Abou Bekr [Tlemcen]
Ayachi, Boubakeur [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Vilcot, Jean-Pierre [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Université Aboubekr Belkaid - University of Belkaïd Abou Bekr [Tlemcen]
Iost, Alain [Auteur]
Mechanics surfaces and materials processing [MSMP]
Montagne, Alex [Auteur]
Mechanics surfaces and materials processing [MSMP]
Rahmoun, Khadidja [Auteur]
Université Aboubekr Belkaid - University of Belkaïd Abou Bekr [Tlemcen]
Ayachi, Boubakeur [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Vilcot, Jean-Pierre [Auteur]
Institut d’Électronique, de Microélectronique et de Nanotechnologie - UMR 8520 [IEMN]
Journal title :
Thin Solid Films
Pages :
1-5
Publisher :
Elsevier
Publication date :
2016
ISSN :
0040-6090
Keyword(s) :
Copper indium gallium selenide
Solar cells
Mechanical properties
Hardness
Young's modulus
Nanoindentation
Solar cells
Mechanical properties
Hardness
Young's modulus
Nanoindentation
HAL domain(s) :
Chimie/Matériaux
Physique [physics]/Matière Condensée [cond-mat]/Science des matériaux [cond-mat.mtrl-sci]
Sciences de l'ingénieur [physics]/Mécanique [physics.med-ph]/Mécanique des matériaux [physics.class-ph]
Physique [physics]/Matière Condensée [cond-mat]/Science des matériaux [cond-mat.mtrl-sci]
Sciences de l'ingénieur [physics]/Mécanique [physics.med-ph]/Mécanique des matériaux [physics.class-ph]
French abstract :
The aim of this work is to assess the mechanical properties of the different layers composing a CIGS based solar cell. Fabrication uses the magnetron sputtering deposition technique (except for the CdS layer which was ...
Show more >The aim of this work is to assess the mechanical properties of the different layers composing a CIGS based solar cell. Fabrication uses the magnetron sputtering deposition technique (except for the CdS layer which was deposited using chemical bath deposition process). We performed several indentation tests on individual layers (Mo back contact layer, CIGS absorber layer, CdS and alternative ZnOS buffer layers, ZnO-AZO window layer) deposited on glass substrates. We mainly report the values of hardness (H) and Young's modulus (E) on each material, through indentation tests with continuous stiffness measurement (CSM) and using an analytical model. The Mo layer remains the hardest and most rigid with H = 8.7 GPa and E = 185 GPa, on the other hand the CIGS layer has a weaker behavior with H = 3 GPa and E = 58 GPa. One might attribute the similar mechanical properties of the ZnO and ZnOS layers to the similarity of their microstructures.Show less >
Show more >The aim of this work is to assess the mechanical properties of the different layers composing a CIGS based solar cell. Fabrication uses the magnetron sputtering deposition technique (except for the CdS layer which was deposited using chemical bath deposition process). We performed several indentation tests on individual layers (Mo back contact layer, CIGS absorber layer, CdS and alternative ZnOS buffer layers, ZnO-AZO window layer) deposited on glass substrates. We mainly report the values of hardness (H) and Young's modulus (E) on each material, through indentation tests with continuous stiffness measurement (CSM) and using an analytical model. The Mo layer remains the hardest and most rigid with H = 8.7 GPa and E = 185 GPa, on the other hand the CIGS layer has a weaker behavior with H = 3 GPa and E = 58 GPa. One might attribute the similar mechanical properties of the ZnO and ZnOS layers to the similarity of their microstructures.Show less >
Language :
Anglais
Peer reviewed article :
Oui
Audience :
Internationale
Popular science :
Non
Source :
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