Journal of The Electrochemical Society · 2010 · 208 citations · 29 references
Thin Film PhysicsOptical MaterialsEngineeringTin SulfideOrganic Solar CellPhoto-electrochemical CellPhotovoltaic DevicesThin Film Process TechnologyChemistryChemical DepositionPlasmon-enhanced PhotovoltaicsPhotovoltaicsSemiconductorsIi-vi SemiconductorChemical EngineeringSolar Cell StructuresPhotovoltaic ApplicationThin Film ProcessingMaterials ScienceMaterials EngineeringSolar Physics (Heliophysics)Copper SulfideThin-film FabricationSolar PowerSolar Physics (Solar Energy Conversion)Natural SciencesSurface ScienceApplied PhysicsThin FilmsSolar CellsChemical Vapor DepositionSolar Cell Materials
Thin films of copper sulfide (CuS, 200 nm thick) were deposited over thin films of tin sulfide (SnS, 180 nm thick) by sequential chemical deposition. The layers were heated in nitrogen atmosphere at 350 and . The grazing incidence X-ray diffraction analysis of these layers established the formation of thin films of ternary composition, and . Optical bandgaps of the films are direct, 0.95 eV for and 1.2 eV for , and the electronic transitions are of the forbidden type in both cases. The films are p-type, with electrical conductivities of and hole concentrations of . Based on the optical absorption coefficients, the light generated current density as a solar cell absorber was evaluated for these materials for air mass 1.5 global solar radiation. For a film thickness of , and could offer of 34 and , respectively. Corresponding optical conversion efficiencies of solar energy into electron–hole pairs are 32 and 24%. The built-in potential for and junctions would be above 0.9 V and above 1.1 V when ZnO replaces CdS as the window layer.
29
Introduction to Solid State Physics
C. Kittel, Heng Fan · American Journal of Physics · 1957 · 22.4K citations
Development of CZTS-based thin film solar cells
Hironori Katagiri, Kazuo Jimbo, Win Shwe Maw et al. · Thin Solid Films · 2008 · 1.1K citations