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EU-Förderung (226.277 €): Programmierbarer parametrischer Resonator mit unabhängiger G-SNAIL-basierter Modulation Hor17.03.2026 EU-Rahmenprogramm für Forschung und Innovation "Horizont"

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Programmierbarer parametrischer Resonator mit unabhängiger G-SNAIL-basierter Modulation

Two paradigmatic approaches for generating arbitrary continuous-variable (CV) states in a qubit–resonator system rely on time-modulating either the qubit drive or the resonator drive. However, the intrinsic Kerr nonlinearity of superconducting cavities imposes a fundamental limit on operation fidelity. Terminating a resonator with a Superconducting Nonlinear Asymmetric Inductive eLement (SNAIL) can mitigate this limitation by providing flux-tunable third- and fourth-order nonlinearities. While the SNAIL’s nonlinear terms are tunable in general, they become fixed at the Kerr-free point, constraining control over gate strengths. This proposal develops a Programmable Parametric Resonator incorporating a Gradiometric SNAIL (G-SNAIL), which is a two-loop, symmetric extension of the SNAIL with a central Josephson junction array flanked by two smaller-critical-current junctions. In contrast to standard SNAILs, the G-SNAIL enables independent, simultaneous tuning of cubic and quartic nonlinearities with negligible frequency perturbation, preserving coherence while expanding functional versatility. This is achieved via dual-flux biasing of the loops, allowing continuous control, and sign reversal, of the Kerr coefficient through the interplay of cubic and quartic terms. The G-SNAIL-terminated resonator functions as a compact, reconfigurable nonlinearity module capable of implementing a universal set of bosonic operations within a single element, reducing hardware complexity by eliminating multiple fixed-design components. The proposed program includes: (i) design, fabrication, and spectral characterization of the G-SNAIL resonator; (ii) Kerr-coefficient mapping to quantify its reconfigurability; and (iii) benchmarking via universal CV mode control and non-Gaussian state generation. This platform paves the way for scalable, fault-tolerant CV quantum computation, with potential transformative impact on high-precision quantum sensing.


Geförderte Unternehmen:

Firmenname Förderungssumme
Aalto Korkeakoulusaatio sr 226.277 €

Quelle: https://cordis.europa.eu/project/id/101283792

Diese Bekanntmachung wurde von Englisch nach Deutsch übersetzt. Die Bekanntmachung bezieht sich auf einen vergangenen Zeitpunkt, und spiegelt nicht notwendigerweise den heutigen Stand wider. Der letzte verfügbare Stand wird auf folgender Seite wiedergegeben: Aalto-korkeakoulusäätiö sr, Espoo, Finnland.