Journal of Materials Chemistry C · 2013 · 54 citations · 22 references
EngineeringHigh Pressure SynthesisCrystal Growth TechnologySolid-state ChemistryChemistrySemiconductor NanostructuresSemiconductorsQuantum MaterialsHigh PressureEpitaxial GrowthSmnio3 Thin FilmsThin Film ProcessingMaterials ScienceMaterials EngineeringCrystalline DefectsOxide ElectronicsSemiconductor MaterialMicrostructureMaterial AnalysisHigh Pressure OxygenSurface ScienceApplied PhysicsCondensed Matter PhysicsThin Films
The rare-earth nickelates (LnNiO3, Ln = lanthanide) are interesting from both fundamental and applied perspectives, but synthesis remains a bottleneck to research due to their thermodynamic instability. Here we report the synthesis of SmNiO3 thin films on oxidized silicon wafers by physical vapor deposition followed by high pressure oxygen annealing at intermediate temperatures. The high pressure annealed films show an insulator–metal transition characteristic of bulk samples. Our experimental observations then allow us to estimate bounds on the phase stability regime, which are particularly useful given the dearth of direct thermodynamic data available for LnNiO3. We examine the limitations of these thermodynamic analyses applied to ultra-thin films. The stabilization of SmNiO3 on a canonical semiconductor template creates opportunities to study the utility of the above room temperature insulator–metal transition (at TIM = 400 K) in electronic devices.
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Resistive switching in transition metal oxides
Akihito Sawa · Materials Today · 2008 · 2.9K citations · Full text
Materials Science, Non-volatile Memory, Electrical Engineering +15
Progress in perovskite nickelate research
Gustau Catalán · Phase Transitions · 2008 · 432 citations