Highly-sensitive superconducting quantum interference proximity transistor
arXiv:1404.4206 · doi:10.1103/PhysRevApplied.2.024005
Abstract
We report the design and implementation of a high-performance superconducting quantum interference proximity transistor (SQUIPT) based on aluminum-copper (Al-Cu) technology. With the adoption of a thin and short copper nanowire we demostrate full phase-driven modulation of the proximity-induced minigap in the normal metal density of states. Under optimal bias we record unprecedently high flux-to-voltage (up to 3 mV/) and flux-to-current (exceeding 100 nA/) transfer function values at sub-Kelvin temperatures, where is the flux quantum. The best magnetic flux resolution (as low as 500 n at 240 mK, being limited by the room temperature pre-amplification stage) is reached under fixed current bias. These figures of merit combined with ultra-low power dissipation and micrometer-size dimensions make this mesoscopic interferometer attractive for low-temperature applications such as the investigation of the magnetization of small spin populations.
7 pages, 5 color figures
References in corpus (3)
Cited by in corpus (6)
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- Phase relations in superconductor-normal metal-superconductor tunnel junctions