Optimal operation of hole spin qubits

Fuente: arXiv
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Main Authors: Bassi, Marion, Rodrıguez-Mena, Esteban-Alonso, Brun, Boris, Zihlmann, Simon, Nguyen, Thanh, Champain, Victor, Abadillo-Uriel, José Carlos, Bertrand, Benoit, Niebojewski, Heimanu, Maurand, Romain, Niquet, Yann-Michel, Jehl, Xavier, De Franceschi, Silvano, Schmitt, Vivien
Format: Preprint
Published: 2024
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author Bassi, Marion
Rodrıguez-Mena, Esteban-Alonso
Brun, Boris
Zihlmann, Simon
Nguyen, Thanh
Champain, Victor
Abadillo-Uriel, José Carlos
Bertrand, Benoit
Niebojewski, Heimanu
Maurand, Romain
Niquet, Yann-Michel
Jehl, Xavier
De Franceschi, Silvano
Schmitt, Vivien
author_facet Bassi, Marion
Rodrıguez-Mena, Esteban-Alonso
Brun, Boris
Zihlmann, Simon
Nguyen, Thanh
Champain, Victor
Abadillo-Uriel, José Carlos
Bertrand, Benoit
Niebojewski, Heimanu
Maurand, Romain
Niquet, Yann-Michel
Jehl, Xavier
De Franceschi, Silvano
Schmitt, Vivien
contents Hole spins in silicon or germanium quantum dots have emerged as a compelling solid-state platform for scalable quantum processors. Besides relying on well-established manufacturing technologies, hole-spin qubits feature fast, electric-field-mediated control stemming from their intrinsically large spin-orbit coupling [1, 2]. This key feature is accompanied by an undesirable susceptibility to charge noise, which usually limits qubit coherence. Here, by varying the magnetic-field orientation, we experimentally establish the existence of ``sweetlines'' in the polar-azimuthal manifold where the qubit is insensitive to charge noise. In agreement with recent predictions [3], we find that the observed sweetlines host the points of maximal driving efficiency, where we achieve fast Rabi oscillations with quality factors as high as 1200. Furthermore, we demonstrate that moderate adjustments in gate voltages can significantly shift the sweetlines. This tunability allows multiple qubits to be simultaneously made insensitive to electrical noise, paving the way for scalable qubit architectures that fully leverage all-electrical spin control. The conclusions of this experimental study, performed on a silicon metal-oxide-semiconductor device, are expected to apply to other implementations of hole spin qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2412_13069
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimal operation of hole spin qubits
Bassi, Marion
Rodrıguez-Mena, Esteban-Alonso
Brun, Boris
Zihlmann, Simon
Nguyen, Thanh
Champain, Victor
Abadillo-Uriel, José Carlos
Bertrand, Benoit
Niebojewski, Heimanu
Maurand, Romain
Niquet, Yann-Michel
Jehl, Xavier
De Franceschi, Silvano
Schmitt, Vivien
Mesoscale and Nanoscale Physics
Hole spins in silicon or germanium quantum dots have emerged as a compelling solid-state platform for scalable quantum processors. Besides relying on well-established manufacturing technologies, hole-spin qubits feature fast, electric-field-mediated control stemming from their intrinsically large spin-orbit coupling [1, 2]. This key feature is accompanied by an undesirable susceptibility to charge noise, which usually limits qubit coherence. Here, by varying the magnetic-field orientation, we experimentally establish the existence of ``sweetlines'' in the polar-azimuthal manifold where the qubit is insensitive to charge noise. In agreement with recent predictions [3], we find that the observed sweetlines host the points of maximal driving efficiency, where we achieve fast Rabi oscillations with quality factors as high as 1200. Furthermore, we demonstrate that moderate adjustments in gate voltages can significantly shift the sweetlines. This tunability allows multiple qubits to be simultaneously made insensitive to electrical noise, paving the way for scalable qubit architectures that fully leverage all-electrical spin control. The conclusions of this experimental study, performed on a silicon metal-oxide-semiconductor device, are expected to apply to other implementations of hole spin qubits.
title Optimal operation of hole spin qubits
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2412.13069