Litcius/Paper detail

Improved photovoltaic performance of phosphonic acid‐based sensitized solar cells via an electron‐withdrawing moiety: A density of functional theory study

Driss Fadili, Zakaria Mohyi Eddine Fahim, Si Mohamed Bouzzine, Mohamed Hamidi

2020International Journal of Quantum Chemistry11 citationsDOI

Abstract

Abstract In this study, the photovoltaic properties and the effects of modifying phosphonic acid‐based dye‐sensitized solar cell (DSSC) via an electron‐withdrawing moiety were theoretically investigated using density functional theory methodology. According to the results, the inclusion of the CC and the electron‐withdrawing CN moieties exhibits a decrease in the highest occupied molecular orbital (HOMO)‐lowest unoccupied molecular orbital (LUMO) gap and a redshift in the absorption spectra. The photoelectric conversion efficiency (PCE) for the T4BTD‐A dye was estimated to be about 6.57% under the standard AM 1.5G solar radiation, which is in excellent agreement with its measured value of 6.40%, suggesting that the calculation scheme is consistent. In addition, the predicted PCE value after elongation of T4BTD‐A by CC and cyanure (CN) has increased to 7.11% and (7.82%, 8.09%), respectively. The addition of CN electron‐withdrawing moiety also enhances the PCE of the studied dyes, while the position of CN moiety has a slight effect on the PCE of the studied dyes. Finally, the calculation suggests that the CCCN1 and CCCN2 are good candidates as efficient sensitizers for DSSC applications.

Topics & Concepts

MoietyDye-sensitized solar cellHOMO/LUMODensity functional theoryTime-dependent density functional theoryChemistryPhotochemistryPolar effectEnergy conversion efficiencyMolecular orbitalBand gapComputational chemistryMaterials sciencePhysical chemistryMoleculeStereochemistryOrganic chemistryOptoelectronicsElectrolyteElectrodeTiO2 Photocatalysis and Solar CellsAdvanced Photocatalysis TechniquesPerovskite Materials and Applications