Control of a Josephson Digital Phase Detector via an SFQ-based Flux Bias Driver

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Di Marino, Laura, Di Palma, Luigi, Riccio, Michele, Fienga, Francesco, Arzeo, Marco, Mukhanov, Oleg
Formato: Preprint
Publicado: 2024
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866910786537914368
author Di Marino, Laura
Di Palma, Luigi
Riccio, Michele
Fienga, Francesco
Arzeo, Marco
Mukhanov, Oleg
author_facet Di Marino, Laura
Di Palma, Luigi
Riccio, Michele
Fienga, Francesco
Arzeo, Marco
Mukhanov, Oleg
contents Quantum computation requires high-fidelity qubit readout, preserving the quantum state. In the case of superconducting (SC) qubits, readout is typically performed using a complex analog experimental setup operated at room temperature, which poses significant technological and economic barriers to large system scalability. An alternative approach is to perform a cryogenic on-chip qubit readout based on a Josephson Digital Phase Detector (JDPD): a flux switchable device capable of digitizing the phase sign of a coherent input. The readout operation includes the flux excitation of the JDPD to evolve from a single to a double-minima potential. In this work, the effect of the flux bias characteristics on the JDPD performances is studied numerically. To meet the identified requirements that maximize detection fidelity and tackle the engineering challenges, a cryogenic on-chip Single Flux Quantum based flux bias driver is proposed and discussed.
format Preprint
id arxiv_https___arxiv_org_abs_2412_11961
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Control of a Josephson Digital Phase Detector via an SFQ-based Flux Bias Driver
Di Marino, Laura
Di Palma, Luigi
Riccio, Michele
Fienga, Francesco
Arzeo, Marco
Mukhanov, Oleg
Quantum Physics
Quantum computation requires high-fidelity qubit readout, preserving the quantum state. In the case of superconducting (SC) qubits, readout is typically performed using a complex analog experimental setup operated at room temperature, which poses significant technological and economic barriers to large system scalability. An alternative approach is to perform a cryogenic on-chip qubit readout based on a Josephson Digital Phase Detector (JDPD): a flux switchable device capable of digitizing the phase sign of a coherent input. The readout operation includes the flux excitation of the JDPD to evolve from a single to a double-minima potential. In this work, the effect of the flux bias characteristics on the JDPD performances is studied numerically. To meet the identified requirements that maximize detection fidelity and tackle the engineering challenges, a cryogenic on-chip Single Flux Quantum based flux bias driver is proposed and discussed.
title Control of a Josephson Digital Phase Detector via an SFQ-based Flux Bias Driver
topic Quantum Physics
url https://arxiv.org/abs/2412.11961