Towards novel tunability schemes for hybrid ferromagnetic transmon qubits

Fuente: arXiv
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Main Authors: Ahmad, Halima Giovanna, Ferraiuolo, Raffaella, Serpico, Giuseppe, Satariano, Roberta, Levochkina, Anna, Vettoliere, Antonio, Granata, Carmine, Montemurro, Domenico, Esposito, Martina, Ausanio, Giovanni, Parlato, Loredana, Pepe, Giovanni Piero, Bruno, Alessandro, Tafuri, Francesco, Massarotti, Davide
Format: Preprint
Published: 2024
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author Ahmad, Halima Giovanna
Ferraiuolo, Raffaella
Serpico, Giuseppe
Satariano, Roberta
Levochkina, Anna
Vettoliere, Antonio
Granata, Carmine
Montemurro, Domenico
Esposito, Martina
Ausanio, Giovanni
Parlato, Loredana
Pepe, Giovanni Piero
Bruno, Alessandro
Tafuri, Francesco
Massarotti, Davide
author_facet Ahmad, Halima Giovanna
Ferraiuolo, Raffaella
Serpico, Giuseppe
Satariano, Roberta
Levochkina, Anna
Vettoliere, Antonio
Granata, Carmine
Montemurro, Domenico
Esposito, Martina
Ausanio, Giovanni
Parlato, Loredana
Pepe, Giovanni Piero
Bruno, Alessandro
Tafuri, Francesco
Massarotti, Davide
contents Flux tuning of qubit frequencies in superconducting quantum processors is fundamental for implementing single and multi-qubit gates in quantum algorithms. Typical architectures involve the use of DC or fast RF lines. However, these lines introduce significant heat dissipation and undesirable decoherence mechanisms, leading to a severe bottleneck for scalability. Among different solutions to overcome this issue, we propose integrating tunnel Superconductor-Insulating-thin superconducting interlayer-Ferromagnet-Superconductor Josephson junctions (SIsFS JJs) into a novel transmon qubit design, the so-called ferrotransmon. SIsFS JJs provide memory properties due to the presence of ferromagnetic barriers and preserve at the same time the low-dissipative behavior of tunnel-insulating JJs, thus promoting an alternative tuning of the qubit frequency. In this work, we discuss the fundamental steps towards the implementation of this hybrid ferromagnetic transmon. We will give a special focus on the design, simulations, and preliminary experimental characterization of superconducting lines to provide in-plane magnetic fields, fundamental for an on-chip control of the qubit frequencies in the ferrotransmon.
format Preprint
id arxiv_https___arxiv_org_abs_2412_06562
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Towards novel tunability schemes for hybrid ferromagnetic transmon qubits
Ahmad, Halima Giovanna
Ferraiuolo, Raffaella
Serpico, Giuseppe
Satariano, Roberta
Levochkina, Anna
Vettoliere, Antonio
Granata, Carmine
Montemurro, Domenico
Esposito, Martina
Ausanio, Giovanni
Parlato, Loredana
Pepe, Giovanni Piero
Bruno, Alessandro
Tafuri, Francesco
Massarotti, Davide
Superconductivity
Quantum Physics
Flux tuning of qubit frequencies in superconducting quantum processors is fundamental for implementing single and multi-qubit gates in quantum algorithms. Typical architectures involve the use of DC or fast RF lines. However, these lines introduce significant heat dissipation and undesirable decoherence mechanisms, leading to a severe bottleneck for scalability. Among different solutions to overcome this issue, we propose integrating tunnel Superconductor-Insulating-thin superconducting interlayer-Ferromagnet-Superconductor Josephson junctions (SIsFS JJs) into a novel transmon qubit design, the so-called ferrotransmon. SIsFS JJs provide memory properties due to the presence of ferromagnetic barriers and preserve at the same time the low-dissipative behavior of tunnel-insulating JJs, thus promoting an alternative tuning of the qubit frequency. In this work, we discuss the fundamental steps towards the implementation of this hybrid ferromagnetic transmon. We will give a special focus on the design, simulations, and preliminary experimental characterization of superconducting lines to provide in-plane magnetic fields, fundamental for an on-chip control of the qubit frequencies in the ferrotransmon.
title Towards novel tunability schemes for hybrid ferromagnetic transmon qubits
topic Superconductivity
Quantum Physics
url https://arxiv.org/abs/2412.06562