Flip-chip-based fast inductive parity readout of a planar superconducting island

Fuente: arXiv
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Main Authors: Hinderling, M., Kate, S. C. ten, Haxell, D. Z., Coraiola, M., Paredes, S., Cheah, E., Krizek, F., Schott, R., Wegscheider, W., Sabonis, D., Nichele, F.
Format: Preprint
Published: 2023
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author Hinderling, M.
Kate, S. C. ten
Haxell, D. Z.
Coraiola, M.
Paredes, S.
Cheah, E.
Krizek, F.
Schott, R.
Wegscheider, W.
Sabonis, D.
Nichele, F.
author_facet Hinderling, M.
Kate, S. C. ten
Haxell, D. Z.
Coraiola, M.
Paredes, S.
Cheah, E.
Krizek, F.
Schott, R.
Wegscheider, W.
Sabonis, D.
Nichele, F.
contents Properties of superconducting devices depend sensitively on the parity (even or odd) of the quasiparticles they contain. Encoding quantum information in the parity degree of freedom is central in several emerging solid-state qubit architectures. Yet, accurate, non-destructive, and time-resolved parity measurement is a challenging and long-standing issue. Here we report on control and real-time parity measurement in a superconducting island embedded in a superconducting loop and realized in a hybrid two-dimensional heterostructure using a microwave resonator. Device and readout resonator are located on separate chips, connected via flip-chip bonding, and couple inductively through vacuum. The superconducting resonator detects the parity-dependent circuit inductance, allowing for fast and non-destructive parity readout. We resolved even and odd parity states with signal-to-noise ratio SNR $\approx3$ with an integration time of $20~μ$s and detection fidelity exceeding 98%. Real-time parity measurement showed state lifetime extending into millisecond range. Our approach will lead to better understanding of coherence-limiting mechanisms in superconducting quantum hardware and provide novel readout schemes for hybrid qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2307_06718
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Flip-chip-based fast inductive parity readout of a planar superconducting island
Hinderling, M.
Kate, S. C. ten
Haxell, D. Z.
Coraiola, M.
Paredes, S.
Cheah, E.
Krizek, F.
Schott, R.
Wegscheider, W.
Sabonis, D.
Nichele, F.
Mesoscale and Nanoscale Physics
Superconductivity
Properties of superconducting devices depend sensitively on the parity (even or odd) of the quasiparticles they contain. Encoding quantum information in the parity degree of freedom is central in several emerging solid-state qubit architectures. Yet, accurate, non-destructive, and time-resolved parity measurement is a challenging and long-standing issue. Here we report on control and real-time parity measurement in a superconducting island embedded in a superconducting loop and realized in a hybrid two-dimensional heterostructure using a microwave resonator. Device and readout resonator are located on separate chips, connected via flip-chip bonding, and couple inductively through vacuum. The superconducting resonator detects the parity-dependent circuit inductance, allowing for fast and non-destructive parity readout. We resolved even and odd parity states with signal-to-noise ratio SNR $\approx3$ with an integration time of $20~μ$s and detection fidelity exceeding 98%. Real-time parity measurement showed state lifetime extending into millisecond range. Our approach will lead to better understanding of coherence-limiting mechanisms in superconducting quantum hardware and provide novel readout schemes for hybrid qubits.
title Flip-chip-based fast inductive parity readout of a planar superconducting island
topic Mesoscale and Nanoscale Physics
Superconductivity
url https://arxiv.org/abs/2307.06718