Electron qubits surfing on acoustic waves: review of recent progress

Fuente: arXiv
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Hauptverfasser: Wang, Junliang, Edlbauer, Hermann, Jadot, Baptiste, Meunier, Tristan, Takada, Shintaro, Bäuerle, Christopher, Sellier, Hermann
Format: Preprint
Veröffentlicht: 2024
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author Wang, Junliang
Edlbauer, Hermann
Jadot, Baptiste
Meunier, Tristan
Takada, Shintaro
Bäuerle, Christopher
Sellier, Hermann
author_facet Wang, Junliang
Edlbauer, Hermann
Jadot, Baptiste
Meunier, Tristan
Takada, Shintaro
Bäuerle, Christopher
Sellier, Hermann
contents The displacement of a single electron enables exciting avenues for nanotechnology with vast application potential in quantum metrology, quantum communication and quantum computation. Surface acoustic waves (SAW) have proven itself as a surprisingly useful solution to perform this task over large distance with outstanding precision and reliability. Over the last decade, important milestones have been achieved bringing SAW-driven single-electron transport from first proof-of-principle demonstrations to accurate, highly-controlled implementations, such as coherent spin transport, charge-to-photon conversion, or antibunching of charge states. Beyond the well-established piezoelectric gallium-arsenide platform, first realisations of acousto-electronic transport have also been carried out on the surface of liquid helium that promises unique stability and coherence. In this review article, we aim to keep track of this remarkable progress in SAW-driven transport of electron qubits by explaining these recent achievements from basic principles, with an outlook on follow-up experiments and near-term applications.
format Preprint
id arxiv_https___arxiv_org_abs_2402_04748
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Electron qubits surfing on acoustic waves: review of recent progress
Wang, Junliang
Edlbauer, Hermann
Jadot, Baptiste
Meunier, Tristan
Takada, Shintaro
Bäuerle, Christopher
Sellier, Hermann
Mesoscale and Nanoscale Physics
The displacement of a single electron enables exciting avenues for nanotechnology with vast application potential in quantum metrology, quantum communication and quantum computation. Surface acoustic waves (SAW) have proven itself as a surprisingly useful solution to perform this task over large distance with outstanding precision and reliability. Over the last decade, important milestones have been achieved bringing SAW-driven single-electron transport from first proof-of-principle demonstrations to accurate, highly-controlled implementations, such as coherent spin transport, charge-to-photon conversion, or antibunching of charge states. Beyond the well-established piezoelectric gallium-arsenide platform, first realisations of acousto-electronic transport have also been carried out on the surface of liquid helium that promises unique stability and coherence. In this review article, we aim to keep track of this remarkable progress in SAW-driven transport of electron qubits by explaining these recent achievements from basic principles, with an outlook on follow-up experiments and near-term applications.
title Electron qubits surfing on acoustic waves: review of recent progress
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2402.04748