Identification and mitigation of errors in hole spin qubit readout

Abstract High-fidelity readout of spin qubits in semiconductor quantum dots can be achieved by combining a radiofrequency charge sensor with spin-to-charge conversion and Pauli spin blockade. However, reaching high readout fidelities with hole spin qubits remains challenging due to site-dependent spin anisotropies and short relaxation times during readout. Here we analyse the multiple error processes that arise during readout using a double-latched scheme in a germanium double-quantum-dot hole spin qubit system. We first investigate the spin-to-charge conversion process as a function of magnetic field orientation and configure the system to adiabatically map the $$\left\vert \downarrow \downarrow \right\rangle$$ ↓↓ state to the only non-blockaded state. We reveal a strong magnetic field strength dependence of the spin relaxation rates, and minimize it by operating at low fields. We further characterize and mitigate the error processes that arise during the double-latching process. By combining a radiofrequency charge sensor, a double-latching process and optimized magnetic field parameters, we achieve a single-shot, single-shot fidelity of 97.0% for single-qubit state preparation and measurement while maintaining control of both spins under the readout conditions.

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Publication Details

Journal
Nature Electronics
Published
2026-09-29
DOI
https://doi.org/10.1038/s41928-026-01705-1
Primary Topic
Quantum and electron transport phenomena
Type
article
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article

Identification and mitigation of errors in hole spin qubit readout

Patrick Harvey-Collard, Bence Hetényi, Marta Pita‐Vidal, Andreas Fuhrer et al.
Nature Electronics
Quantum and electron transport phenomena
article

Identification and mitigation of errors in hole spin qubit readout

Patrick Harvey-Collard, Bence Hetényi, Marta Pita‐Vidal, Andreas Fuhrer, Stephen W. Bedell, Matthias Mergenthaler, Lisa Sommer, Michele Aldeghi, Eoin G. Kelly, Alexei Orekhov, Gian Salis, Κωνσταντίνος Τσουκαλάς, Inga Seidler, Felix J. Schupp, Leonardo Massai, Stephan Paredes, Cornelius Carlsson
article en

Abstract

Abstract High-fidelity readout of spin qubits in semiconductor quantum dots can be achieved by combining a radiofrequency charge sensor with spin-to-charge conversion and Pauli spin blockade. However, reaching high readout fidelities with hole spin qubits remains challenging due to site-dependent spin anisotropies and short relaxation times during readout. Here we analyse the multiple error processes that arise during readout using a double-latched scheme in a germanium double-quantum-dot hole spin qubit system. We first investigate the spin-to-charge conversion process as a function of magnetic field orientation and configure the system to adiabatically map the $$\left\vert \downarrow \downarrow \right\rangle$$ ↓↓ state to the only non-blockaded state. We reveal a strong magnetic field strength dependence of the spin relaxation rates, and minimize it by operating at low fields. We further characterize and mitigate the error processes that arise during the double-latching process. By combining a radiofrequency charge sensor, a double-latching process and optimized magnetic field parameters, we achieve a single-shot, single-shot fidelity of 97.0% for single-qubit state preparation and measurement while maintaining control of both spins under the readout conditions.

Nature Electronics
IBM (United States) (US), IBM Research - Thomas J. Watson Research Center (US), IBM Research - Zurich (CH)
Openalex Percentile: Top 14%
Quantum and electron transport phenomena
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