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Quantum Entanglement and Spin Control in Silicon Nanocrystal

Selective coherence control and electrically mediated exchange coupling of single electron spin between triplet and singlet states using numerically derived optimal control of proton pulses is demonstrated. We obtained spatial confinement below size of the Bohr radius for proton spin chain FWHM. Pre...

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Autor principal: Berec, Vesna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3454410/
https://www.ncbi.nlm.nih.gov/pubmed/23028884
http://dx.doi.org/10.1371/journal.pone.0045254
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author Berec, Vesna
author_facet Berec, Vesna
author_sort Berec, Vesna
collection PubMed
description Selective coherence control and electrically mediated exchange coupling of single electron spin between triplet and singlet states using numerically derived optimal control of proton pulses is demonstrated. We obtained spatial confinement below size of the Bohr radius for proton spin chain FWHM. Precise manipulation of individual spins and polarization of electron spin states are analyzed via proton induced emission and controlled population of energy shells in pure (29)Si nanocrystal. Entangled quantum states of channeled proton trajectories are mapped in transverse and angular phase space of (29)Si [Image: see text] axial channel alignment in order to avoid transversal excitations. Proton density and proton energy as impact parameter functions are characterized in single particle density matrix via discretization of diagonal and nearest off-diagonal elements. We combined high field and low densities (1 MeV/92 nm) to create inseparable quantum state by superimposing the hyperpolarizationed proton spin chain with electron spin of (29)Si. Quantum discretization of density of states (DOS) was performed by the Monte Carlo simulation method using numerical solutions of proton equations of motion. Distribution of gaussian coherent states is obtained by continuous modulation of individual spin phase and amplitude. Obtained results allow precise engineering and faithful mapping of spin states. This would provide the effective quantum key distribution (QKD) and transmission of quantum information over remote distances between quantum memory centers for scalable quantum communication network. Furthermore, obtained results give insights in application of channeled protons subatomic microscopy as a complete versatile scanning-probe system capable of both quantum engineering of charged particle states and characterization of quantum states below diffraction limit linear and in-depth resolution. PACS numbers: 03.65.Ud, 03.67.Bg, 61.85.+p, 67.30.hj
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spelling pubmed-34544102012-10-01 Quantum Entanglement and Spin Control in Silicon Nanocrystal Berec, Vesna PLoS One Research Article Selective coherence control and electrically mediated exchange coupling of single electron spin between triplet and singlet states using numerically derived optimal control of proton pulses is demonstrated. We obtained spatial confinement below size of the Bohr radius for proton spin chain FWHM. Precise manipulation of individual spins and polarization of electron spin states are analyzed via proton induced emission and controlled population of energy shells in pure (29)Si nanocrystal. Entangled quantum states of channeled proton trajectories are mapped in transverse and angular phase space of (29)Si [Image: see text] axial channel alignment in order to avoid transversal excitations. Proton density and proton energy as impact parameter functions are characterized in single particle density matrix via discretization of diagonal and nearest off-diagonal elements. We combined high field and low densities (1 MeV/92 nm) to create inseparable quantum state by superimposing the hyperpolarizationed proton spin chain with electron spin of (29)Si. Quantum discretization of density of states (DOS) was performed by the Monte Carlo simulation method using numerical solutions of proton equations of motion. Distribution of gaussian coherent states is obtained by continuous modulation of individual spin phase and amplitude. Obtained results allow precise engineering and faithful mapping of spin states. This would provide the effective quantum key distribution (QKD) and transmission of quantum information over remote distances between quantum memory centers for scalable quantum communication network. Furthermore, obtained results give insights in application of channeled protons subatomic microscopy as a complete versatile scanning-probe system capable of both quantum engineering of charged particle states and characterization of quantum states below diffraction limit linear and in-depth resolution. PACS numbers: 03.65.Ud, 03.67.Bg, 61.85.+p, 67.30.hj Public Library of Science 2012-09-24 /pmc/articles/PMC3454410/ /pubmed/23028884 http://dx.doi.org/10.1371/journal.pone.0045254 Text en © 2012 Vesna Berec http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Berec, Vesna
Quantum Entanglement and Spin Control in Silicon Nanocrystal
title Quantum Entanglement and Spin Control in Silicon Nanocrystal
title_full Quantum Entanglement and Spin Control in Silicon Nanocrystal
title_fullStr Quantum Entanglement and Spin Control in Silicon Nanocrystal
title_full_unstemmed Quantum Entanglement and Spin Control in Silicon Nanocrystal
title_short Quantum Entanglement and Spin Control in Silicon Nanocrystal
title_sort quantum entanglement and spin control in silicon nanocrystal
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3454410/
https://www.ncbi.nlm.nih.gov/pubmed/23028884
http://dx.doi.org/10.1371/journal.pone.0045254
work_keys_str_mv AT berecvesna quantumentanglementandspincontrolinsiliconnanocrystal