Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating

Despite the relatively high efficiency of the organic solar cells (OSCs), their stability issues have not yet been fully resolved. Various approaches have been reported in the literature to improve the overall performance and stability of OSCs. In this work, the approach of hot-substrate coating was...

Full description

Saved in:
Bibliographic Details
Main Authors: Al-Shekaili, Naser, Hashim, Suhairul, Muhammadsharif, Fahmi F., Sulaiman, Khaulah, Al-Abri, M. Z.
Format: Article
Published: Springer 2021
Subjects:
Online Access:http://eprints.um.edu.my/27866/
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.um.eprints.27866
record_format eprints
spelling my.um.eprints.278662022-04-08T03:11:00Z http://eprints.um.edu.my/27866/ Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating Al-Shekaili, Naser Hashim, Suhairul Muhammadsharif, Fahmi F. Sulaiman, Khaulah Al-Abri, M. Z. QC Physics TA Engineering (General). Civil engineering (General) Despite the relatively high efficiency of the organic solar cells (OSCs), their stability issues have not yet been fully resolved. Various approaches have been reported in the literature to improve the overall performance and stability of OSCs. In this work, the approach of hot-substrate coating was carried out to enhance the performance and stability of OSCs based on the PTB7:PC71BM active layer. The approach involves maintaining the substrate temperature at 150 degrees C, while depositing the active layers with a spin coater. The results demonstrate that OSCs fabricated via hot-substrate coating achieved a power conversion efficiency (PCE) of 7.94%, whereas devices with active layers deposited at room temperature (RT) achieved an average efficiency of 5.6%. According to the stability study of the devices, it was observed that the hot-substrate coated devices maintained 94% of their initial PCE after 72 h of operation. This is where the RT-coated devices retained 53% of their efficiency. In conclusion, the proposed approach can be applied to improve the efficiency and stability of organic solar cells. Springer 2021-12 Article PeerReviewed Al-Shekaili, Naser and Hashim, Suhairul and Muhammadsharif, Fahmi F. and Sulaiman, Khaulah and Al-Abri, M. Z. (2021) Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating. Journal of Electronic Materials, 50 (12, SI). pp. 6828-6835. ISSN 0361-5235, DOI https://doi.org/10.1007/s11664-021-09238-3 <https://doi.org/10.1007/s11664-021-09238-3>. 10.1007/s11664-021-09238-3
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
TA Engineering (General). Civil engineering (General)
spellingShingle QC Physics
TA Engineering (General). Civil engineering (General)
Al-Shekaili, Naser
Hashim, Suhairul
Muhammadsharif, Fahmi F.
Sulaiman, Khaulah
Al-Abri, M. Z.
Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
description Despite the relatively high efficiency of the organic solar cells (OSCs), their stability issues have not yet been fully resolved. Various approaches have been reported in the literature to improve the overall performance and stability of OSCs. In this work, the approach of hot-substrate coating was carried out to enhance the performance and stability of OSCs based on the PTB7:PC71BM active layer. The approach involves maintaining the substrate temperature at 150 degrees C, while depositing the active layers with a spin coater. The results demonstrate that OSCs fabricated via hot-substrate coating achieved a power conversion efficiency (PCE) of 7.94%, whereas devices with active layers deposited at room temperature (RT) achieved an average efficiency of 5.6%. According to the stability study of the devices, it was observed that the hot-substrate coated devices maintained 94% of their initial PCE after 72 h of operation. This is where the RT-coated devices retained 53% of their efficiency. In conclusion, the proposed approach can be applied to improve the efficiency and stability of organic solar cells.
format Article
author Al-Shekaili, Naser
Hashim, Suhairul
Muhammadsharif, Fahmi F.
Sulaiman, Khaulah
Al-Abri, M. Z.
author_facet Al-Shekaili, Naser
Hashim, Suhairul
Muhammadsharif, Fahmi F.
Sulaiman, Khaulah
Al-Abri, M. Z.
author_sort Al-Shekaili, Naser
title Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
title_short Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
title_full Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
title_fullStr Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
title_full_unstemmed Efficiency and stability improvement of organic solar cells based on PTB7: PCBM through hot-substrate coating
title_sort efficiency and stability improvement of organic solar cells based on ptb7: pcbm through hot-substrate coating
publisher Springer
publishDate 2021
url http://eprints.um.edu.my/27866/
_version_ 1735409532554706944
score 13.211869