Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D

In this study, tungsten di-sulphide (WS2), one of the key transition-metal dichalcogenide (TMDC) materials, is used as solar cell absorber material with a suitable solar cell configuration and analyzed by SCAPS-1D. Other main focuses include optimum absorber layer thickness, suitable material for bu...

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Main Authors: Sobayel K., Rahman K.S., Karim M.R., Aijaz M.O., Dar M.A., Shar M.A., Misran H., Amin N.
Other Authors: 57194049079
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Published: S.C. Virtual Company of Phisics S.R.L 2023
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spelling my.uniten.dspace-238052023-05-29T14:51:58Z Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D Sobayel K. Rahman K.S. Karim M.R. Aijaz M.O. Dar M.A. Shar M.A. Misran H. Amin N. 57194049079 56348138800 56820318000 57188713075 8586960200 56192464300 6506899840 7102424614 In this study, tungsten di-sulphide (WS2), one of the key transition-metal dichalcogenide (TMDC) materials, is used as solar cell absorber material with a suitable solar cell configuration and analyzed by SCAPS-1D. Other main focuses include optimum absorber layer thickness, suitable material for buffer layer instead of CdS and effect of operating temperature on solar cell performance. An efficiency of 19.48% (with Voc of 0.90 V, Jsc of 24.94 mA/cm2 and fill factor of 0.86) has been found for the cell with CdS based buffer layer. High efficiency WS2 solar cells have the optimized absorber thickness in the range of 2 �m to 3 �m. Moreover, the desired thickness of the buffer layer is observed in between 40�60 nm. Among different types (ZnO, ZnSe, ZnS, CdS and In2S3) of buffer layers, ZnO based WS2 solar cell shows the potential to reach out the highest efficiency of 25.71%. However, cell with ZnO buffer layer shows a temperature gradient of-0.24%/K. All these simulation results provide significant hints that may lead to higher efficiency of WS2 solar cells with beneficial experimental studies in practical implementation. � 2018, National Institute R and D of Materials Physics. All rights reserved. Final 2023-05-29T06:51:58Z 2023-05-29T06:51:58Z 2018 Article 2-s2.0-85049203084 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85049203084&partnerID=40&md5=2736c3daea4781fd0f904da1de701423 https://irepository.uniten.edu.my/handle/123456789/23805 15 6 307 315 S.C. Virtual Company of Phisics S.R.L Scopus
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description In this study, tungsten di-sulphide (WS2), one of the key transition-metal dichalcogenide (TMDC) materials, is used as solar cell absorber material with a suitable solar cell configuration and analyzed by SCAPS-1D. Other main focuses include optimum absorber layer thickness, suitable material for buffer layer instead of CdS and effect of operating temperature on solar cell performance. An efficiency of 19.48% (with Voc of 0.90 V, Jsc of 24.94 mA/cm2 and fill factor of 0.86) has been found for the cell with CdS based buffer layer. High efficiency WS2 solar cells have the optimized absorber thickness in the range of 2 �m to 3 �m. Moreover, the desired thickness of the buffer layer is observed in between 40�60 nm. Among different types (ZnO, ZnSe, ZnS, CdS and In2S3) of buffer layers, ZnO based WS2 solar cell shows the potential to reach out the highest efficiency of 25.71%. However, cell with ZnO buffer layer shows a temperature gradient of-0.24%/K. All these simulation results provide significant hints that may lead to higher efficiency of WS2 solar cells with beneficial experimental studies in practical implementation. � 2018, National Institute R and D of Materials Physics. All rights reserved.
author2 57194049079
author_facet 57194049079
Sobayel K.
Rahman K.S.
Karim M.R.
Aijaz M.O.
Dar M.A.
Shar M.A.
Misran H.
Amin N.
format Article
author Sobayel K.
Rahman K.S.
Karim M.R.
Aijaz M.O.
Dar M.A.
Shar M.A.
Misran H.
Amin N.
spellingShingle Sobayel K.
Rahman K.S.
Karim M.R.
Aijaz M.O.
Dar M.A.
Shar M.A.
Misran H.
Amin N.
Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
author_sort Sobayel K.
title Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
title_short Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
title_full Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
title_fullStr Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
title_full_unstemmed Numerical modeling on prospective buffer layers for tungsten di-sulfide (WS2) solar cells by scaps-1D
title_sort numerical modeling on prospective buffer layers for tungsten di-sulfide (ws2) solar cells by scaps-1d
publisher S.C. Virtual Company of Phisics S.R.L
publishDate 2023
_version_ 1806427984912973824
score 13.214268