Magnetic-Field and Temperature Limits of a Kinetic-Inductance Traveling-Wave Parametric Amplifier

Fuente: arXiv
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Main Authors: Janssen, Lucas M., Faramarzi, Farzad, LeDuc, Henry G., Patel, Sahil, Catelani, Gianluigi, Day, Peter K., Ando, Yoichi, Dickel, Christian
Format: Preprint
Published: 2025
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_version_ 1866909799351844864
author Janssen, Lucas M.
Faramarzi, Farzad
LeDuc, Henry G.
Patel, Sahil
Catelani, Gianluigi
Day, Peter K.
Ando, Yoichi
Dickel, Christian
author_facet Janssen, Lucas M.
Faramarzi, Farzad
LeDuc, Henry G.
Patel, Sahil
Catelani, Gianluigi
Day, Peter K.
Ando, Yoichi
Dickel, Christian
contents Kinetic-inductance traveling-wave parametric amplifiers (KI-TWPAs) offer broadband near-quantum-limited amplification with high saturation power. Due to the high critical magnetic fields of high-kinetic-inductance materials, KI-TWPAs should be resilient to magnetic fields. In this work, we study how magnetic field and temperature affect the performance of a KI-TWPA based on a thin-NbTiN inverse microstrip with a Nb ground plane. This KI-TWPA can provide substantial signal-to-noise ratio improvement ($ΔSNR$) up to in-plane magnetic fields of 0.35T and out-of-plane fields of 50mT, considerably higher than what has been demonstrated with TWPAs based on Josephson junctions. The field compatibility can be further improved by incorporating vortex traps and by using materials with higher critical fields. We also find that the gain does not degrade when the temperature is raised to 3K (limited by the Nb ground plane) while $ΔSNR$ decreases with temperature consistently with expectation. This demonstrates that KI-TWPAs can be used in experiments that need to be performed at relatively high temperatures. The operability of KI-TWPAs in high magnetic field opens the door to a wide range of applications in spin qubits, spin ensembles, topological qubits, low-power NMR, and the search for axion dark matter.
format Preprint
id arxiv_https___arxiv_org_abs_2509_15043
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnetic-Field and Temperature Limits of a Kinetic-Inductance Traveling-Wave Parametric Amplifier
Janssen, Lucas M.
Faramarzi, Farzad
LeDuc, Henry G.
Patel, Sahil
Catelani, Gianluigi
Day, Peter K.
Ando, Yoichi
Dickel, Christian
Quantum Physics
Mesoscale and Nanoscale Physics
Superconductivity
Kinetic-inductance traveling-wave parametric amplifiers (KI-TWPAs) offer broadband near-quantum-limited amplification with high saturation power. Due to the high critical magnetic fields of high-kinetic-inductance materials, KI-TWPAs should be resilient to magnetic fields. In this work, we study how magnetic field and temperature affect the performance of a KI-TWPA based on a thin-NbTiN inverse microstrip with a Nb ground plane. This KI-TWPA can provide substantial signal-to-noise ratio improvement ($ΔSNR$) up to in-plane magnetic fields of 0.35T and out-of-plane fields of 50mT, considerably higher than what has been demonstrated with TWPAs based on Josephson junctions. The field compatibility can be further improved by incorporating vortex traps and by using materials with higher critical fields. We also find that the gain does not degrade when the temperature is raised to 3K (limited by the Nb ground plane) while $ΔSNR$ decreases with temperature consistently with expectation. This demonstrates that KI-TWPAs can be used in experiments that need to be performed at relatively high temperatures. The operability of KI-TWPAs in high magnetic field opens the door to a wide range of applications in spin qubits, spin ensembles, topological qubits, low-power NMR, and the search for axion dark matter.
title Magnetic-Field and Temperature Limits of a Kinetic-Inductance Traveling-Wave Parametric Amplifier
topic Quantum Physics
Mesoscale and Nanoscale Physics
Superconductivity
url https://arxiv.org/abs/2509.15043