Coupling a $^{73}$Ge nuclear spin to an electrostatically defined quantum dot

Fuente: arXiv
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Autores principales: Steinacker, Paul, Goenka, Gauri, Su, Rocky Yue, Tanttu, Tuomo, Lim, Wee Han, Serrano, Santiago, Botzem, Tim, Cifuentes, Jesus D., Lim, Shao Qi, McCallum, Jeffrey C., Johnson, Brett C., Hudson, Fay E., Chan, Kok Wai, Escott, Christopher C., Saraiva, Andre, Yang, Chih Hwan, Mourik, Vincent, Morello, Andrea, Dzurak, Andrew S., Laucht, Arne
Formato: Preprint
Publicado: 2025
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author Steinacker, Paul
Goenka, Gauri
Su, Rocky Yue
Tanttu, Tuomo
Lim, Wee Han
Serrano, Santiago
Botzem, Tim
Cifuentes, Jesus D.
Lim, Shao Qi
McCallum, Jeffrey C.
Johnson, Brett C.
Hudson, Fay E.
Chan, Kok Wai
Escott, Christopher C.
Saraiva, Andre
Yang, Chih Hwan
Mourik, Vincent
Morello, Andrea
Dzurak, Andrew S.
Laucht, Arne
author_facet Steinacker, Paul
Goenka, Gauri
Su, Rocky Yue
Tanttu, Tuomo
Lim, Wee Han
Serrano, Santiago
Botzem, Tim
Cifuentes, Jesus D.
Lim, Shao Qi
McCallum, Jeffrey C.
Johnson, Brett C.
Hudson, Fay E.
Chan, Kok Wai
Escott, Christopher C.
Saraiva, Andre
Yang, Chih Hwan
Mourik, Vincent
Morello, Andrea
Dzurak, Andrew S.
Laucht, Arne
contents Single nuclear spins in silicon are a promising resource for quantum technologies due to their long coherence times and excellent control fidelities. Qubits and qudits have been encoded on donor nuclei, with successful demonstrations of Bell states and quantum memories on the spin-1/2 $^{31}$P and cat-qubits on the spin-7/2 $^{123}$Sb nuclei. Isoelectronic nuclear spins coupled to gate-defined quantum dots, such as the naturally occurring $^{29}$Si isotope, possess no additional charge and allow for the coupled electron to be shuttled without destroying the nuclear spin coherence. Here, we demonstrate the coupling and readout of a spin-9/2 $^{73}$Ge nuclear spin to a gate-defined quantum dot in SiMOS. The $^{73}$Ge nucleus was implanted by isotope-selective ion-implantation. We observe the hyperfine interaction (HFI) to the coupled quantum dot electron and are able to tune it from 180 kHz to 350 kHz, through the voltages applied to the lateral gate electrodes. This work lays the foundation for future spin control experiments on the spin-9/2 qudit as well as more advanced experiments such as entanglement distribution between distant nuclear spins or repeated weak measurements.
format Preprint
id arxiv_https___arxiv_org_abs_2510_03981
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Coupling a $^{73}$Ge nuclear spin to an electrostatically defined quantum dot
Steinacker, Paul
Goenka, Gauri
Su, Rocky Yue
Tanttu, Tuomo
Lim, Wee Han
Serrano, Santiago
Botzem, Tim
Cifuentes, Jesus D.
Lim, Shao Qi
McCallum, Jeffrey C.
Johnson, Brett C.
Hudson, Fay E.
Chan, Kok Wai
Escott, Christopher C.
Saraiva, Andre
Yang, Chih Hwan
Mourik, Vincent
Morello, Andrea
Dzurak, Andrew S.
Laucht, Arne
Mesoscale and Nanoscale Physics
Quantum Physics
Single nuclear spins in silicon are a promising resource for quantum technologies due to their long coherence times and excellent control fidelities. Qubits and qudits have been encoded on donor nuclei, with successful demonstrations of Bell states and quantum memories on the spin-1/2 $^{31}$P and cat-qubits on the spin-7/2 $^{123}$Sb nuclei. Isoelectronic nuclear spins coupled to gate-defined quantum dots, such as the naturally occurring $^{29}$Si isotope, possess no additional charge and allow for the coupled electron to be shuttled without destroying the nuclear spin coherence. Here, we demonstrate the coupling and readout of a spin-9/2 $^{73}$Ge nuclear spin to a gate-defined quantum dot in SiMOS. The $^{73}$Ge nucleus was implanted by isotope-selective ion-implantation. We observe the hyperfine interaction (HFI) to the coupled quantum dot electron and are able to tune it from 180 kHz to 350 kHz, through the voltages applied to the lateral gate electrodes. This work lays the foundation for future spin control experiments on the spin-9/2 qudit as well as more advanced experiments such as entanglement distribution between distant nuclear spins or repeated weak measurements.
title Coupling a $^{73}$Ge nuclear spin to an electrostatically defined quantum dot
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2510.03981