IEEE Transactions on Applied Superconductivity · 2003 · 16 citations · 8 references
EngineeringInterconnect (Integrated Circuits)Physical Design (Electronics)Wafer Scale ProcessingAdvanced Packaging (Semiconductors)NanoelectronicsElectronic EngineeringNumerical SimulationSuperconductivityMagnetohydrodynamicsElectronic PackagingAnodization ProcessMetrology TechniquesElectrical EngineeringCritical-current-density UniformityPhysicsBias Temperature InstabilityExperimental AnalysisSemiconductor Device FabricationMicroelectronicsAnodization TechniqueCondensed Matter PhysicsApplied PhysicsElectrical Insulation
We discuss an anodization technique for a Nb superconductive-electronics-fabrication process that results in an improvement in critical-current-density J/sub c/ uniformity across a 150-mm-diameter wafer. We outline the anodization process and describe the metrology techniques used to determine the NbO/sub x/ thickness grown. In the work described, we performed critical current I/sub c/ measurements on Josephson junctions distributed across a wafer. We then compared the J/sub c/ uniformity of pairs of wafers, fabricated together, differing only in the presence or absence of the anodization step. The cross-wafer standard deviation of J/sub c/ was typically /spl sim/5% for anodized wafers but >15% for unanodized wafers. This difference in J/sub c/ uniformity is suggestive of an in-process modification from an unknown cause that is blocked by the anodic oxide. It is interesting that small junctions do not see an improvement in I/sub c/ uniformity - apparently the anodization improves only the J/sub c/ uniformity and not the variation in junction size. Control of J/sub c/ is important for all applications of superconductive electronics including quantum computation and rapid single-flux quantum (RSFQ) circuitry.
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Karl K. Berggren, Eric Matos Macêdo, Derrick Feld et al. · IEEE Transactions on Applied Superconductivity · 1999 · 34 citations
Superconducting Material, Engineering, Computer Architecture +24