Anisotropic $g$-tensors in hole quantum dots: The role of the transverse confinement direction
J{\o}rgen Holme Qvist, Jeroen Danon

TL;DR
This paper provides a theoretical analysis of the anisotropic $g$-tensor in hole quantum dots, emphasizing the influence of transverse confinement orientation and spin-orbit interactions, to optimize hole-spin qubit control.
Contribution
It derives general analytic expressions for the anisotropic $g$-tensor of heavy holes, including corrections due to spin-orbit coupling, considering the effects of confinement orientation and anisotropic Hamiltonian.
Findings
Analytic formulas for the anisotropic $g$-tensor of heavy holes.
Demonstration of how confinement orientation affects $g$-tensor anisotropy.
Method to incorporate spin-orbit interaction corrections into $g$-tensor calculations.
Abstract
Qubits encoded in the spin state of heavy holes confined in Si- and Ge-based semiconductor quantum dots are currently leading the efforts toward spin-based quantum information processing. The virtual absence of spinful nuclei in purified samples yields long qubit coherence times and the intricate coupling between spin and momentum in the valence band can provide very fast spin-orbit-based qubit control, e.g., via electrically induced modulations of the heavy-hole -tensor. A thorough understanding of all aspects of the interplay between spin-orbit coupling, the confining potentials, and applied magnetic fields is thus quintessential for the development of the optimal hole-spin-based qubit platform. Here we theoretically investigate the manifestation of the effective -tensor and effective mass of heavy holes in two-dimensional hole gases as well as in lateral quantum dots. We…
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Taxonomy
TopicsQuantum and electron transport phenomena · Semiconductor Quantum Structures and Devices · Physics of Superconductivity and Magnetism
