Abstract
To improve the performance of inverted perovskite solar cells (IPSCs), we introduce a novel approach to enhance the devices' efficiency notably using the Finite Element Method (FEM). Our novel strategy incorporates a cutting-edge metasurface-based reflector featuring titanium dioxide (TiO2) nanodiscs within a MoSe2 layer, employed as an electron transport layer (ETL). Demonstrating a substantial improvement in light reflection from the lower part of the structure, the TiO2 nanodiscs as a metasurface-based reflector enhance electron transfer. Notably, the metasurface-based perfect reflector, incorporating TiO2 nanodiscs, outperforms other TiO2 nanocube variations with an impressive light reflectance of 97.95%. Exploring different materials for ETLs and hole transfer layers (HTLs), we identify molybdenum diselenide (MoSe2) as a potent secondary absorbent material, featuring a smaller bandgap than the primary absorbent CH3NH3PbI3 (MAPbI3), thereby intensifying the electric field within the active layer and improving Power Conversion Efficiency (PCE). In the final evaluation, our inverted metasurface-based device structure (indium tin oxide (ITO)/cuprous oxide (Cu2O)/MAPbI3/TiO2 nanodiscs and MoSe2/aluminum (Al)/silicon dioxide (SiO2)) significantly enhances the solar cell's electrical characteristics compared to the planar reference structure (ITO/copper(i) thiocyanate (CuSCN)/MAPbI3/TiO2/Al), with noteworthy increases in short circuit current density (Jsc), open circuit voltage (Voc), and PCE values from 17.98 mA cm−2 to 21.91 mA cm−2, 1.03 V to 1.07 V, and 15.33% to 19.17%, respectively. This comprehensive investigation underscores the promising potential of our proposed inverted metasurface-based device structure for advancing solar cell technology.
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CITATION STYLE
Maleki, J., Shahrostami, M., Huang, S., & Abdi-Jalebi, M. (2025). Efficiency boost in perovskite solar cells via TiO2 nanodiscs embedded in the MoSe2 electron transport layer revealed by optoelectronic simulations. Sustainable Energy and Fuels, 9(7), 1797–1811. https://doi.org/10.1039/d4se01414f
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