Aller au contenu

Charge-noise correlations in dense quantum-dot arrays

Stage 25 à 36 mois

Leuven (Belgium)

Publiée le 2 septembre 2026

  • Contrat

    Stage 25 à 36 mois

  • Lieu

    Leuven (Belgium)

  • Date de début

    Dès que possible

  • Salaire

    Information non renseignée

  • Télétravail

    Non spécifié

Fault-tolerant quantumcomputing requires quantum-error-correction (QEC) protocols that encode high-fidelitylogical qubits from many noisy physical qubits. These protocols typicallyassume that physical errors are uncorrelated. However, this assumption maybreak down in solid-state qubit platforms where qubits are arranged inextremely dense geometries. In gate-defined quantum-dot spin qubits, localizedcharge defects or fluctuators can perturb multiple qubits simultaneously,potentially generating spatially correlated errors and undermining QECperformance [1].

This thesis aims toquantify the spatial correlation length scales of charge noise in large,densely packed quantum-dot arrays. The work involves optimizing an existingmillikelvin measurement setup for multi-channel charge-noise spectroscopy usingquantum dots operated in transport (single-electron transistors, SETs). Byenabling parallel readout of multiple sites, the setup will allow directmeasurement of correlation functions across the array. These experiments willbe performed on a state-of-the-art two-dimensional quantum-dot array fabricatedusing imec's advanced spin-qubit technology platform [2]. The results willprovide valuable insight into the nature of correlated noise in semiconductorqubit processors and support the development of scalable, fault-tolerantquantum computing architectures.

[1] Yoneda, J. etal. Noise-correlation spectrum for a pair of spin qubits in silicon. Nat.Phys. 19, 1793-1798 (2023).

[2] Steinacker, P. etal. Industry-compatible silicon spin-qubit unit cells exceeding 99%fidelity. Nature 646, 81-87 (2025).

Type of internship: Master internship

Duration: 10 months

Required educational background: Electrotechnics/Electrical Engineering, Nanoscience & Nanotechnology, Physics

University promotor: Kristiaan De Greve (KU Leuven)

Supervising scientist(s): For further information or for application, please contact Jacques Van Damme (< email supprimé pour raison de sécurité >) and Kristiaan De Greve (< email supprimé pour raison de sécurité >)

The reference code for this position is 2026-INT-094. Mention this reference code in your application.

Only for self-supporting students.

Applications should include the following information:
  • resume
  • motivation
  • current study

Incomplete applications will not be considered.

Date limite de candidature

Tant que l’offre est en ligne

Niveau d'étude

Niveau Master, MSc ou Programme Grande Ecole

Fonction

Technologie

Plus d’infos sur l’entreprise

imec

Embracing a better life.