The Diamond SQUID
arXiv:1110.0102 · doi:10.1021/nn2018396
Abstract
Diamond is an electrical insulator in its natural form. However, when doped with boron above a critical level (~0.25 at.%) it can be rendered superconducting at low temperatures with high critical fields. Here we present the realization of a micrometer scale superconducting quantum interference device -SQUID made from nanocrystalline boron doped diamond (BDD) films. Our results demonstrate that -SQUIDs made from superconducting diamond can be operated in magnetic fields as large as 4T independent on the field direction. This is a decisive step towards the detection of quantum motion in a diamond based nanomechanical oscillator.
5 pages, 4 figures
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Cited by in corpus (14)
- Scanning nano-SQUID with single electron spin sensitivity
- Nano Superconducting Quantum Interference device: a powerful tool for nanoscale investigations
- A detailed analysis of the Raman spectra in superconducting boron doped nanocrystalline diamond
- NanoSQUIDs: Basics & recent advances
- Superconducting nano-mechanical diamond resonators
- A high performance Nb nano-SQUID with a three-dimensional structure
- Nanocrystalline diamond-glass platform for the development of three-dimensional micro- and nanodevices
- Josephson Coupling in the Dissipative State of a Thermally Hysteretic -SQUID
- Observation of conduction electron spin resonance in boron doped diamond
- Contact resistance of various metallisation schemes to superconducting boron doped diamond between 1.9 and 300 K
- Nano-bridge Superconducting Quantum Interference Devices: beyond the Josephson limit
- Superconducting boron doped nanocrystalline diamond microwave coplanar resonator
- Micron size superconducting quantum interference devices of lead (Pb)
- Current-induced nanogap formation and graphitization in boron-doped diamond films