Publication | Open Access
Status of materials and device modelling for kesterite solar cells
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Citations
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References
2019
Year
EngineeringSolid-state ChemistryChemistryPhotovoltaic SystemPhotovoltaicsSemiconductor NanostructuresSemiconductorsIi-vi SemiconductorAbstract Kesterite SemiconductorsSolar Energy UtilisationMaterials ScienceMaterials EngineeringCrystalline DefectsKesterite SemiconductorsSemiconductor MaterialEnergy MaterialTransition Metal ChalcogenidesApplied PhysicsKesterite Solar CellsSolar CellsSns 4Solar Cell Materials
Abstract Kesterite semiconductors, derived from the mineral Cu 2 (Zn,Fe)SnS 4 , adopt superstructures of the zincblende archetype. This family of semiconductors is chemically flexible with the possibility to tune the physical properties over a large range by modifying the chemical composition, while preserving the same structural backbone. In the simplest case, three metals (e.g. Cu, Zn and Sn) occupy the cation sublattice, which gives rise to a range of competing orderings (polymorphs) and the possibility for order–disorder transitions. The rich physics of the sulphide, selenide, and mixed-anion materials make them attractive for computer simulations in order to provide deeper insights and to direct experiments to the most promising material combinations and processing regimes. This topical review assesses the status of first-principles electronic structure calculations, optical modelling, and photovoltaic device simulations of kesterite semiconductors. Recent progress is discussed, and immediate challenges are outlined, in particular towards overcoming the voltage deficit in Cu 2 ZnSnS 4 and Cu 2 ZnSnSe 4 solar cells.
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