Hole Spin Qubits in Ge Nanowire Quantum Dots: Interplay of Orbital Magnetic Field, Strain, and Growth Direction
Christoph Adelsberger, M\'onica Benito, Stefano Bosco, Jelena, Klinovaja, Daniel Loss

TL;DR
This paper analyzes hole spin qubits in germanium nanowires, focusing on how magnetic fields, strain, and growth direction influence spin-orbit interaction, g-factors, and qubit coherence, proposing optimized device designs.
Contribution
It provides an analytical model for the interplay of electromagnetic fields and geometry in Ge nanowire qubits, identifying g-factor sweet spots and optimal growth directions for enhanced coherence.
Findings
Orbital magnetic effects significantly renormalize the g-factor.
A g-factor sweet spot suppresses charge noise and enhances coherence.
Growth direction affects spin-orbit interaction strength and qubit performance.
Abstract
Hole spin qubits in quasi one-dimensional structures are a promising platform for quantum information processing because of the strong spin-orbit interaction (SOI). We present analytical results and discuss device designs that optimize the SOI in Ge semiconductors. We show that at the magnetic field values at which qubits are operated, orbital effects of magnetic fields can strongly affect the response of the spin qubit. We study one-dimensional hole systems in Ge under the influence of electric and magnetic fields applied perpendicularly to the device. In our theoretical description, we include these effects exactly. The orbital effects lead to a strong renormalization of the g-factor. We find a sweet-spot of the nanowire (NW) g-factor where charge noise is strongly suppressed and present an effective low-energy model that captures the dependence of the SOI on the electromagnetic…
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Taxonomy
TopicsQuantum and electron transport phenomena · Semiconductor Quantum Structures and Devices · Topological Materials and Phenomena
