Fabrication of superconducting tantalum nitride thin films using infra-red pulsed laser deposition
arXiv:1302.4579 · doi:10.1116/1.4812698
Abstract
We report the successful fabrication of superconducting tantalum nitride (TaN) thin films using a pulsed laser deposition technique with 1064 nm radiation. Films with thickness 100 nm deposited on MgO (100) single crystals and on oxidized silicon (SiO) substrates exhibited a superconducting transition temperature of 8 K and 6 K, respectively. The topography of these films were investigated using atomic force and scanning electron microscopy, revealing fairly large area particulate free and smooth surfaces, while the structure of the films were investigated using standard and glancing angle X-ray diffraction techniques. For films grown on MgO a face-centered cubic phase of TaN was observed, while films grown on SiO exhibited the face-centered cubic and as well as a mononitride hexagonal phase. The transition temperature of the TaN deposited on SiO was found to be more sensitive to the nitrogen pressure during deposition as compared to the TaN deposited on MgO.
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- Superconducting tantalum nitride-based normal metal-insulator-superconductor tunnel junctions
- Room temperature spin-orbit torque efficiency in sputtered low-temperature superconductor delta-TaN
- Highly tunable NbTiN Josephson junctions fabricated with focused helium ion beam
- Growth optimization of TaN for superconducting spintronics