Inherent internal p-n junction assisted single layered n-type iron pyrite solar cell

被引:4
作者
Gohri, Shivani [1 ]
Madan, Jaya [1 ]
Mohammed, Mustafa K. A. [2 ]
Pandey, Rahul [1 ]
机构
[1] Chitkara Univ, Chitkara Univ Inst Engn & Technol, VLSI Ctr Excellence, Chandigarh, Punjab, India
[2] Univ Warith Al Anbiyaa, Karbala 56001, Iraq
关键词
solar cell; SCAPS-1D; simulation; FeS2; iron pyrite; thin film; EFFICIENCY; SURFACE;
D O I
10.1088/2053-1591/acb982
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The high absorption coefficient and low cost with plentiful availability make the material iron pyrite (FeS2) promising for solar cell applications. However, their efficiency in the literature is still around 2.8% due to their low V-OC. The presence of an acceptor-type surface inversion layer (SIL) with a significant band gap (0.56 eV-0.72 eV) is the main cause of this low performance. A detailed study considering these two parameters is not available in the literature to relate device performance to underlying phenomena. Therefore, a comprehensive analysis of the band gap and doping variation of SIL was performed in this article to explore the efficiency potential of FeS2 solar cells. The results showed that SIL with a low bandgap is highly undesirable, and it is recommended to fabricate SIL with a higher band gap of 0.72 eV and a doping of 10(19) cm(-3) in the laboratory to achieve a conversion efficiency of 5.36%. It was also confirmed that FeS2-based solar cells without a SIL layer have the potential to deliver 10.3% conversion efficiency. The results reported in this study will pave the way for underestimating the workings of iron pyrite solar cells and developing highly efficient FeS2 solar cells.
引用
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页数:11
相关论文
共 46 条
[1]   Long-term stable and hysteresis-free planar perovskite solar cells using green antisolvent strategy [J].
Ahmed, Duha S. ;
Mohammed, Ban K. ;
Mohammed, Mustafa K. A. .
JOURNAL OF MATERIALS SCIENCE, 2021, 56 (27) :15205-15214
[2]   Comparison study between ZnO and TiO2 in CuO based solar cell using SCAPS-1D [J].
Ait-Wahmane, Youssef ;
Mouhib, Haytam ;
Ydir, Brahim ;
Hssi, Abderrahim Ait ;
Atourki, Lahoucine ;
Ihlal, Ahmed ;
Bouabid, Khalid .
MATERIALS TODAY-PROCEEDINGS, 2022, 52 :166-171
[3]   Simulation and analysis of lead-free perovskite solar cells incorporating cerium oxide as electron transporting layer [J].
Al-Mousoi, Ali K. ;
Mohammed, Mustafa K. A. ;
Pandey, Rahul ;
Madan, Jaya ;
Dastan, Davoud ;
Ravi, G. ;
Sakthivel, P. ;
Anandha Babu, G. .
RSC ADVANCES, 2022, 12 (50) :32365-32373
[4]   Effect of the absorber layer band-gap on CIGS solar cell [J].
Belghachi, Abderrahmane ;
Limam, Naima .
CHINESE JOURNAL OF PHYSICS, 2017, 55 (04) :1127-1134
[5]  
Burgelman M., 2007, P NUMOS INT WORKSHOP
[6]   High-Performance Tin-Lead Mixed-Perovskite Solar Cells with Vertical Compositional Gradient [J].
Cao, Jiupeng ;
Hok-Leung Loi ;
Xu, Yang ;
Guo, Xuyun ;
Wang, Naixiang ;
Liu, Chun-ki ;
Wang, Tianyue ;
Cheng, Haiyang ;
Zhu, Ye ;
Li, Mitch Guijun ;
Wai-Yeung Wong ;
Yan, Feng .
ADVANCED MATERIALS, 2022, 34 (06)
[7]   Low-Cost Strategy for High-Efficiency Bifacial Perovskite/c-Si Tandem Solar Cells [J].
Du, Daxue ;
Gao, Chao ;
Zhang, Dezhao ;
Qiao, Feiyang ;
Liang, Jingjing ;
Wang, Haiyan ;
Shen, Wenzhong .
SOLAR RRL, 2022, 6 (02)
[8]  
Dureja Tanishq, 2022, Materials Today: Proceedings, P239, DOI 10.1016/j.matpr.2022.08.518
[9]  
Ennaoul A., 1990, PREPARATION IRON DIS, V1990, P458, DOI [10.1016/B978-0-08-037539-7.50078-8, DOI 10.1016/B978-0-08-037539-7.50078-8]
[10]   Solar cell efficiency tables (Version 60) [J].
Green, Martin A. ;
Dunlop, Ewan D. ;
Hohl-Ebinger, Jochen ;
Yoshita, Masahiro ;
Kopidakis, Nikos ;
Bothe, Karsten ;
Hinken, David ;
Rauer, Michael ;
Hao, Xiaojing .
PROGRESS IN PHOTOVOLTAICS, 2022, 30 (07) :687-701