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Main Authors: Samaras, I., Barr, K., Schneider, C., Höfling, S., Lagoudakis, K. G.
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2604.07074
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author Samaras, I.
Barr, K.
Schneider, C.
Höfling, S.
Lagoudakis, K. G.
author_facet Samaras, I.
Barr, K.
Schneider, C.
Höfling, S.
Lagoudakis, K. G.
contents We demonstrate complete coherent control of a single spin qubit confined in a self-assembled InAs negatively charged quantum dot subjected to an Oblique magnetic field, and directly compare this regime with the conventional Voigt geometry. In the Oblique-field configuration, the groundstate spin eigenstates are found to be unequal superpositions of the bare electron spin, with their composition tunable via the orientation of the applied field. This tunable spin mixing provides an additional degree of freedom to engineer the spin basis and associated optical couplings in the charged quantum dot system. Although this geometry has a distinct structure with important implications, it provides a regime in which we can fully and coherently control the tailored spin qubit. We observe Rabi oscillations and Ramsey fringes, and demonstrate arbitrary single-qubit rotations, enabling a direct comparison with the Voigt case. Our results establish that spin-qubit control does not necessarily require a pure Voigt geometry and can instead be achieved under Oblique magnetic fields. This relaxes constraints on device and field alignment and offers a versatile route to design and optimize quantum information processing architectures in semiconductor quantum dots.
format Preprint
id arxiv_https___arxiv_org_abs_2604_07074
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Complete coherent control of spin qubits in self-assembled InAs quantum dots under oblique magnetic fields
Samaras, I.
Barr, K.
Schneider, C.
Höfling, S.
Lagoudakis, K. G.
Quantum Physics
Mesoscale and Nanoscale Physics
We demonstrate complete coherent control of a single spin qubit confined in a self-assembled InAs negatively charged quantum dot subjected to an Oblique magnetic field, and directly compare this regime with the conventional Voigt geometry. In the Oblique-field configuration, the groundstate spin eigenstates are found to be unequal superpositions of the bare electron spin, with their composition tunable via the orientation of the applied field. This tunable spin mixing provides an additional degree of freedom to engineer the spin basis and associated optical couplings in the charged quantum dot system. Although this geometry has a distinct structure with important implications, it provides a regime in which we can fully and coherently control the tailored spin qubit. We observe Rabi oscillations and Ramsey fringes, and demonstrate arbitrary single-qubit rotations, enabling a direct comparison with the Voigt case. Our results establish that spin-qubit control does not necessarily require a pure Voigt geometry and can instead be achieved under Oblique magnetic fields. This relaxes constraints on device and field alignment and offers a versatile route to design and optimize quantum information processing architectures in semiconductor quantum dots.
title Complete coherent control of spin qubits in self-assembled InAs quantum dots under oblique magnetic fields
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2604.07074