Strong Charge-Photon Coupling in Planar Germanium Enabled by Granular Aluminium Superinductors

Fuente: arXiv
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Autori principali: Janík, Marián, Roux, Kevin, Espinosa, Carla Borja, Sagi, Oliver, Baghdadi, Abdulhamid, Adletzberger, Thomas, Calcaterra, Stefano, Botifoll, Marc, Manjón, Alba Garzón, Arbiol, Jordi, Chrastina, Daniel, Isella, Giovanni, Pop, Ioan M., Katsaros, Georgios
Natura: Preprint
Pubblicazione: 2024
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author Janík, Marián
Roux, Kevin
Espinosa, Carla Borja
Sagi, Oliver
Baghdadi, Abdulhamid
Adletzberger, Thomas
Calcaterra, Stefano
Botifoll, Marc
Manjón, Alba Garzón
Arbiol, Jordi
Chrastina, Daniel
Isella, Giovanni
Pop, Ioan M.
Katsaros, Georgios
author_facet Janík, Marián
Roux, Kevin
Espinosa, Carla Borja
Sagi, Oliver
Baghdadi, Abdulhamid
Adletzberger, Thomas
Calcaterra, Stefano
Botifoll, Marc
Manjón, Alba Garzón
Arbiol, Jordi
Chrastina, Daniel
Isella, Giovanni
Pop, Ioan M.
Katsaros, Georgios
contents High kinetic inductance superconductors are gaining increasing interest for the realisation of qubits, amplifiers and detectors. Moreover, thanks to their high impedance, quantum buses made of such materials enable large zero-point fluctuations of the voltage, boosting the coupling rates to spin and charge qubits. However, fully exploiting the potential of disordered or granular superconductors is challenging, as their inductance and, therefore, impedance at high values are difficult to control. Here we have integrated a granular aluminium resonator, having a characteristic impedance exceeding the resistance quantum, with a germanium double quantum dot and demonstrate strong charge-photon coupling with a rate of $g_\text{c}/2π= (566 \pm 2)$ MHz. This was achieved due to the realisation of a wireless ohmmeter, which allows \emph{in situ} measurements during film deposition and, therefore, control of the kinetic inductance of granular aluminium films. Reproducible fabrication of circuits with impedances (inductances) exceeding 13 k$Ω$ (1 nH per square) is now possible. This broadly applicable method opens the path for novel qubits and high-fidelity, long-distance two-qubit gates.
format Preprint
id arxiv_https___arxiv_org_abs_2407_03079
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Strong Charge-Photon Coupling in Planar Germanium Enabled by Granular Aluminium Superinductors
Janík, Marián
Roux, Kevin
Espinosa, Carla Borja
Sagi, Oliver
Baghdadi, Abdulhamid
Adletzberger, Thomas
Calcaterra, Stefano
Botifoll, Marc
Manjón, Alba Garzón
Arbiol, Jordi
Chrastina, Daniel
Isella, Giovanni
Pop, Ioan M.
Katsaros, Georgios
Mesoscale and Nanoscale Physics
Quantum Physics
High kinetic inductance superconductors are gaining increasing interest for the realisation of qubits, amplifiers and detectors. Moreover, thanks to their high impedance, quantum buses made of such materials enable large zero-point fluctuations of the voltage, boosting the coupling rates to spin and charge qubits. However, fully exploiting the potential of disordered or granular superconductors is challenging, as their inductance and, therefore, impedance at high values are difficult to control. Here we have integrated a granular aluminium resonator, having a characteristic impedance exceeding the resistance quantum, with a germanium double quantum dot and demonstrate strong charge-photon coupling with a rate of $g_\text{c}/2π= (566 \pm 2)$ MHz. This was achieved due to the realisation of a wireless ohmmeter, which allows \emph{in situ} measurements during film deposition and, therefore, control of the kinetic inductance of granular aluminium films. Reproducible fabrication of circuits with impedances (inductances) exceeding 13 k$Ω$ (1 nH per square) is now possible. This broadly applicable method opens the path for novel qubits and high-fidelity, long-distance two-qubit gates.
title Strong Charge-Photon Coupling in Planar Germanium Enabled by Granular Aluminium Superinductors
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2407.03079