Proposal and Numerical Analysis of Organic/Sb2Se3 All-Thin-Film Tandem Solar Cell

Author:

Alanazi Tarek I.1ORCID,Alanazi Abdulaziz2ORCID,Touti Ezzeddine23,Agwa Ahmed M.24,Kraiem Habib25ORCID,Alanazi Mohana6ORCID,Alanazi Abdulrahman M.2,El Sabbagh Mona7

Affiliation:

1. Department of Physics, College of Science, Northern Border University, Arar 73222, Saudi Arabia

2. Department of Electrical Engineering, College of Engineering, Northern Border University, Arar 73222, Saudi Arabia

3. Electrical Engineering Department, Laboratory of Industrial Systems Engineering and Renewable Energies (LISIER), University of Tunis, Tunis 1008, Tunisia

4. Department of Electrical Engineering, Faculty of Engineering, Al-Azhar University, Cairo 11651, Egypt

5. Processes, Energy, Environment and Electrical Systems, National Engineering School of Gabes, University of Gabes, Gabes 6029, Tunisia

6. Department of Electrical Engineering, College of Engineering, Jouf University, Sakaka 72388, Saudi Arabia

7. Engineering Physics and Mathematics Department, Faculty of Engineering, Ain Shams University, Cairo 11535, Egypt

Abstract

The low bandgap antimony selenide (Sb2Se3) and wide bandgap organic solar cell (OSC) can be considered suitable bottom and top subcells for use in tandem solar cells. Some properties of these complementary candidates are their non-toxicity and cost-affordability. In this current simulation study, a two-terminal organic/Sb2Se3 thin-film tandem is proposed and designed through TCAD device simulations. To validate the device simulator platform, two solar cells were selected for tandem design, and their experimental data were chosen for calibrating the models and parameters utilized in the simulations. The initial OSC has an active blend layer, whose optical bandgap is 1.72 eV, while the initial Sb2Se3 cell has a bandgap energy of 1.23 eV. The structures of the initial standalone top and bottom cells are ITO/PEDOT:PSS/DR3TSBDT:PC71BM/PFN/Al, and FTO/CdS/Sb2Se3/Spiro-OMeTAD/Au, while the recorded efficiencies of these individual cells are about 9.45% and 7.89%, respectively. The selected OSC employs polymer-based carrier transport layers, specifically PEDOT:PSS, an inherently conductive polymer, as an HTL, and PFN, a semiconducting polymer, as an ETL. The simulation is performed on the connected initial cells for two cases. The first case is for inverted (p-i-n)/(p-i-n) cells and the second is for the conventional (n-i-p)/(n-i-p) configuration. Both tandems are investigated in terms of the most important layer materials and parameters. After designing the current matching condition, the tandem PCEs are boosted to 21.52% and 19.14% for the inverted and conventional tandem cells, respectively. All TCAD device simulations are made by employing the Atlas device simulator given an illumination of AM1.5G (100 mW/cm2). This present study can offer design principles and valuable suggestions for eco-friendly solar cells made entirely of thin films, which can achieve flexibility for prospective use in wearable electronics.

Funder

Deanship of Scientific Research at Northern Border University

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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