Publication | Open Access
Barrier Design to Prevent Metal-Induced Degradation and Improve Thermal Stability in Perovskite Solar Cells
260
Citations
48
References
2018
Year
Improve Thermal StabilityEngineeringHalide PerovskitesPerovskite Solar CellsPerovskite ModulePhotovoltaicsSolar Cell StructuresBarrier Layer DesignIndium Tin OxideMaterials SciencePerovskite MaterialsLead-free PerovskitesPerovskite Solar CellSurface ScienceApplied PhysicsBarrier DesignThin FilmsSolar CellsH Thermal StabilitySolar Cell Materials
Metal-contact-induced degradation and escape of volatile species from perovskite solar cells necessitate excellent diffusion barrier layers. We show that metal-induced degradation limits thermal stability in several perovskite chemistries with Au, Cu, and Ag gridlines even when the metal is separated from the perovskite by a layer of indium tin oxide (ITO). Channels in a sputtered ITO layer that align with perovskite grain boundaries are pathways for metal and halide diffusion into or out of the perovskite. Planarizing the perovskite morphology with a spin-cast organic charge-transport layer results in a subsequently deposited ITO layer that is uniform and impermeable. We show that it is critical to seal the edges of the active layers to prevent escape of volatile species. We demonstrate 1000 h thermal stability at 85 °C in CH3NH3PbI3 solar cells with complete-coverage silver contacts. Our barrier layer design enables long-term thermal stability of perovskite solar cells, a critical step to commercialization.
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