RSC Advances · 2013 · 15 citations · 15 references
β-Fesi2 FilmEngineeringThin Film Process TechnologySilicon On InsulatorPhotovoltaicsSemiconductorsNm Thick β-Fesi2Solar Cell StructuresThin Film ProcessingMaterials ScienceElectrical EngineeringCrystalline DefectsNm Thick P-β-fesi2Semiconductor MaterialSemiconductor Device FabricationApplied PhysicsThin-film Photovoltaic ApplicationsThin FilmsSolar CellsSolar Cell Materials
Aluminum-alloyed polycrystalline p-type β-phase iron disilicide p-β-FeSi2(Al) films with different thicknesses are successfully integrated with n-type polycrystalline silicon films on glass for thin-film solar cell applications. A sharp and high-quality interface is formed between 49 nm thick β-FeSi2(Al) and poly-Si, through the formation of a thin layer (∼7 nm) of Al-doped p+ epitaxial Si. The quality of the interface between poly-Si and p-β-FeSi2(Al) is found to degrade with increasing p-β-FeSi2(Al) thickness. An ∼5 nm thick amorphous layer is observed at the interface for the 145 nm thick p-β-FeSi2(Al) layer. The structural and photovoltaic characteristics of the p-type β-FeSi2/p+ Si/n− Si/n+ Si solar cell samples are investigated in detail. For a sample annealed at 650 °C, a one-Sun open-circuit voltage of 320 mV and pseudo fill factor of 67% are obtained, using an ∼49 nm p-type β-FeSi2 film on n-type poly-Si. The efficiency of the investigated solar cell structure decreases with increasing annealing temperature and thickness of the β-FeSi2 film.
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A silicon/iron-disilicide light-emitting diode operating at a wavelength of 1.5 μm
D. Leong, M. Harry, K.J. Reeson et al. · Nature · 1997 · 717 citations · Full text