Silicon Superconducting Quantum Interference Device
arXiv:1508.04075 · doi:10.1063/1.4928660
Abstract
We have studied a Superconducting Quantum Interference SQUID device made from a single layer thin film of superconducting silicon. The superconducting layer is obtained by heavily doping a silicon wafer with boron atoms using the Gas Immersion Laser Doping (GILD) technique. The SQUID device is composed of two nano-bridges (Dayem bridges) in a loop and shows magnetic flux modulation at low temperature and low magnetic field. The overall behavior shows very good agreement with numerical simulations based on the Ginzburg-Landau equations.
Published in Applied Physics Letters (August 2015)
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Cited by in corpus (7)
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- Josephson Coupling in the Dissipative State of a Thermally Hysteretic -SQUID
- All silicon Josephson junctions
- Hole in one: Pathways to deterministic single-acceptor incorporation in Si(100)-21
- Superconductivity in silicon: a review
- Tailoring Superconducting Phases Observed in Hyperdoped Si:Ga for Cryogenic Circuit Applications
- Electronic structure of boron and aluminum -doped layers in silicon