A quasiparticle-injection superconducting microwave relaxation oscillator

Fuente: arXiv
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Main Authors: Trupiano, Giacomo, De Simoni, Giorgio, Giazotto, Francesco
Format: Preprint
Published: 2024
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author Trupiano, Giacomo
De Simoni, Giorgio
Giazotto, Francesco
author_facet Trupiano, Giacomo
De Simoni, Giorgio
Giazotto, Francesco
contents We propose a superconducting microwave relaxation oscillator based on a nanowire shunted by a resistor and an inductor controlled by quasiparticle injection from a tunnel junction positioned on it: the QUISTRON. This device exhibits relaxation oscillator behavior with DC voltage-controlled frequency tuning and DC current bias. The device frequency is modulated via the tunnel junction, which induces localized heating by injecting quasiparticles. This heating mechanism modulates the nanowire switching current, enabling relaxation oscillations when it falls below the bias current. We demonstrate the device operating principles and characterize its performance across various parameters, including different choices of shunt resistor, shunt inductance, and bath temperature ranging from 20 mK to 1 K. The device showed oscillation with a frequency range approximately between 1 GHz and 10 GHz and total energy dissipation per cycle of $\sim100$ zJ. Our results suggest that this design offers a promising platform for compact, tunable superconducting oscillators in the microwave spectrum with potential applications in quantum information processing, microwave technology, and ultra-low-power electronics. The straightforward frequency control mechanism and integration potential make this device an attractive candidate for superconducting microwave local oscillators.
format Preprint
id arxiv_https___arxiv_org_abs_2407_14363
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A quasiparticle-injection superconducting microwave relaxation oscillator
Trupiano, Giacomo
De Simoni, Giorgio
Giazotto, Francesco
Mesoscale and Nanoscale Physics
Superconductivity
We propose a superconducting microwave relaxation oscillator based on a nanowire shunted by a resistor and an inductor controlled by quasiparticle injection from a tunnel junction positioned on it: the QUISTRON. This device exhibits relaxation oscillator behavior with DC voltage-controlled frequency tuning and DC current bias. The device frequency is modulated via the tunnel junction, which induces localized heating by injecting quasiparticles. This heating mechanism modulates the nanowire switching current, enabling relaxation oscillations when it falls below the bias current. We demonstrate the device operating principles and characterize its performance across various parameters, including different choices of shunt resistor, shunt inductance, and bath temperature ranging from 20 mK to 1 K. The device showed oscillation with a frequency range approximately between 1 GHz and 10 GHz and total energy dissipation per cycle of $\sim100$ zJ. Our results suggest that this design offers a promising platform for compact, tunable superconducting oscillators in the microwave spectrum with potential applications in quantum information processing, microwave technology, and ultra-low-power electronics. The straightforward frequency control mechanism and integration potential make this device an attractive candidate for superconducting microwave local oscillators.
title A quasiparticle-injection superconducting microwave relaxation oscillator
topic Mesoscale and Nanoscale Physics
Superconductivity
url https://arxiv.org/abs/2407.14363