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Refractive index extraction and thickness optimization of Cu<sub>2</sub>ZnSnSe<sub>4</sub>thin film solar cells

Hossam ElanzeeryDepartment of Microelectronics System Design; Nile University; Cairo EgyptOunsi El DaïfImec-Partner in Solliance; Kapeldreef 75 3001 Leuven BelgiumMarie BuffièreDepartment of Electrical Engineering; KU Leuven; Kasteelpark Arenberg 10 3001 Heverlee BelgiumSouhaib OueslatiDepartment of Physics; Faculty of Sciences of Tunis; El Manar TunisiaKhaled Ben MessaoudDepartment of Physics; Faculty of Sciences of Tunis; El Manar TunisiaDries AgtenImec-Partner in Solliance; Kapeldreef 75 3001 Leuven BelgiumGuy BrammertzImec Division IMOMEC-Partner in Solliance; Wetenschapspark 1 3590 Diepenbeek BelgiumRafik GuindiDepartment of Microelectronics System Design; Nile University; Cairo EgyptB. KniknieTNO; De Rondom 1 5612 AP Eindhoven The NetherlandsMarc MeurisImec Division IMOMEC-Partner in Solliance; Wetenschapspark 1 3590 Diepenbeek BelgiumJef PoortmansDepartment of Electrical Engineering; KU Leuven; Kasteelpark Arenberg 10 3001 Heverlee Belgium
2015en
ABI

Annotatsiya

Cu2ZnSnSe4 (CZTSe) thin film solar cells are promising emergent photovoltaic technologies based on low-bandgap absorber layer with high absorption coefficient. To reduce optical losses in such devices and thus improve their efficiency, numerical simulations of CZTSe solar cells optical characteristics can be performed based on individual optical properties of each layer present in the cell structure. In this contribution, we have first determined the optical coefficients of individual thin films (i.e., (n, k) of the absorber, buffer, and window layers) to build a realistic model simulating the optical behavior of the whole cell stack we propose. Optical characterization was performed using two approaches, one based on ellipsometry measurements for characterizing thin flat cadmium sulfide (CdS) and zinc oxide (ZnO) layers and the other relying on reflectance and transmission (R/T) analysis for the rough CZTSe absorber. Then, we performed numerical simulations using as input experimental optical parameters predicting optimal CZTSe cell structure minimizing optical losses. The impact of each layer's thickness on the cell's short-circuit current has been studied. A set of optimal thicknesses of each of the active layers was proposed. Finally, the proposed optical optimization was experimented practically leading to CZTSe cells with 9.7% and 10.4% efficiencies.

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