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Exchange anisotropies in microwave-driven singlet-triplet qubits

Mesoscale and Nanoscale Physics 2024-11-26 v2 Quantum Physics

Abstract

Hole spin qubits are rapidly emerging as the workhorse of semiconducting quantum processors because of their large spin-orbit interaction, enabling fast all-electric operations at low power. However, spin-orbit interaction also causes non-uniformities in devices, resulting in locally varying qubit energies and site-dependent anisotropies. While these anisotropies can be used to drive single-spins, if not properly harnessed, they can hinder the path toward large-scale quantum processors. Here, we report on microwave-driven singlet-triplet qubits in planar germanium and use them to investigate the anisotropy of two spins in a double quantum dot. We show two distinct operating regimes depending on the magnetic field direction. For in-plane fields, the two spins are largely anisotropic, and electrically tunable, which enables to measure all the available transitions; coherence times exceeding 3 μ\mus are extracted. For out-of-plane fields, they have an isotropic response but preserve the substantial energy difference required to address the singlet-triplet qubit. Even in this field direction, where the qubit lifetime is strongly affected by nuclear spins, we find 400 ns coherence times. Our work adds a valuable tool to investigate and harness the anisotropy of spin qubits and can be implemented in any large-scale NxN device, facilitating the path towards scalable quantum processors.

Keywords

Cite

@article{arxiv.2408.03224,
  title  = {Exchange anisotropies in microwave-driven singlet-triplet qubits},
  author = {Jaime Saez-Mollejo and Daniel Jirovec and Yona Schell and Josip Kukucka and Stefano Calcaterra and Daniel Chrastina and Giovanni Isella and Maximilian Rimbach-Russ and Stefano Bosco and Georgios Katsaros},
  journal= {arXiv preprint arXiv:2408.03224},
  year   = {2024}
}
R2 v1 2026-06-28T18:05:29.132Z