Few-electron spin qubits in optically active GaAs quantum dots

Fuente: arXiv
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Main Authors: Millington-Hotze, Peter, Klenovsky, Petr, Dyte, Harry E., Gillard, George, Manna, Santanu, da Silva, Saimon F. Covre, Rastelli, Armando, Chekhovich, Evgeny A.
Format: Preprint
Published: 2025
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author Millington-Hotze, Peter
Klenovsky, Petr
Dyte, Harry E.
Gillard, George
Manna, Santanu
da Silva, Saimon F. Covre
Rastelli, Armando
Chekhovich, Evgeny A.
author_facet Millington-Hotze, Peter
Klenovsky, Petr
Dyte, Harry E.
Gillard, George
Manna, Santanu
da Silva, Saimon F. Covre
Rastelli, Armando
Chekhovich, Evgeny A.
contents The knowledge of the energy spectrum completely defines the dynamics of a quantum system for a given initial state. This makes spectroscopy a key characterization technique when studying or designing qubits and complex quantum systems. In semiconductor quantum dots, the electronic quantum states can be probed through charge transport spectroscopy, but the electric current itself disrupts the fragile quantum system, and the technique is practically limited to gate-defined quantum dots. Epitaxial quantum dots benefit from excellent optical properties, but are usually incompatible with charge transport, while alternative spectroscopy techniques provide only limited information. Here we demonstrate a spectroscopy technique which utilizes nuclear spins as a non-invasive probe. By using spin currents instead of the charge currents we achieve near-equilibrium probing. Experiments are conducted on low-strain GaAs/AlGaAs epitaxial dots, revealing energy spectra for charge configurations with up to seven electrons and the subtle properties of the multi-electron states. The rich variety of observations includes long-lived spin-qubit states in s and p shells, ground-state phase transitions, strong spin-orbit coupling regimes, and anomalously fast nuclear spin diffusion. Experiments are backed up by good agreement with the first-principles configuration-interaction numerical modelling. Our work uncovers few-electron states as a new operating regime for optically active quantum dots. Accurate control and probing of many-body states offers a test-bed system for fundamental physics studies, while prospective technological applications include electron spin qubits with extended coherence and scalable electrical control.
format Preprint
id arxiv_https___arxiv_org_abs_2504_19257
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Few-electron spin qubits in optically active GaAs quantum dots
Millington-Hotze, Peter
Klenovsky, Petr
Dyte, Harry E.
Gillard, George
Manna, Santanu
da Silva, Saimon F. Covre
Rastelli, Armando
Chekhovich, Evgeny A.
Mesoscale and Nanoscale Physics
The knowledge of the energy spectrum completely defines the dynamics of a quantum system for a given initial state. This makes spectroscopy a key characterization technique when studying or designing qubits and complex quantum systems. In semiconductor quantum dots, the electronic quantum states can be probed through charge transport spectroscopy, but the electric current itself disrupts the fragile quantum system, and the technique is practically limited to gate-defined quantum dots. Epitaxial quantum dots benefit from excellent optical properties, but are usually incompatible with charge transport, while alternative spectroscopy techniques provide only limited information. Here we demonstrate a spectroscopy technique which utilizes nuclear spins as a non-invasive probe. By using spin currents instead of the charge currents we achieve near-equilibrium probing. Experiments are conducted on low-strain GaAs/AlGaAs epitaxial dots, revealing energy spectra for charge configurations with up to seven electrons and the subtle properties of the multi-electron states. The rich variety of observations includes long-lived spin-qubit states in s and p shells, ground-state phase transitions, strong spin-orbit coupling regimes, and anomalously fast nuclear spin diffusion. Experiments are backed up by good agreement with the first-principles configuration-interaction numerical modelling. Our work uncovers few-electron states as a new operating regime for optically active quantum dots. Accurate control and probing of many-body states offers a test-bed system for fundamental physics studies, while prospective technological applications include electron spin qubits with extended coherence and scalable electrical control.
title Few-electron spin qubits in optically active GaAs quantum dots
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2504.19257