Coherent electron displacement for quantum information processing using attosecond single cycle pulses

Abstract Coherent electron displacement is a conventional strategy for processing quantum information, as it enables to interconnect distinct sites in a network of atoms. The efficiency of the processing relies on the precise control of the mechanism, which has yet to be established. Here, we theore...

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Main Author: Hicham Agueny
Format: Article
Language:English
Published: Nature Publishing Group 2020-12-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-020-79004-8
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spelling doaj-2ae1c54d8b5048c7baf6848d62ae946d2020-12-20T12:29:21ZengNature Publishing GroupScientific Reports2045-23222020-12-011011910.1038/s41598-020-79004-8Coherent electron displacement for quantum information processing using attosecond single cycle pulsesHicham Agueny0Department of Physics and Technology, University of BergenAbstract Coherent electron displacement is a conventional strategy for processing quantum information, as it enables to interconnect distinct sites in a network of atoms. The efficiency of the processing relies on the precise control of the mechanism, which has yet to be established. Here, we theoretically demonstrate a new route to drive the electron displacement on a timescale faster than that of the dynamical distortion of the electron wavepacket by utilizing attosecond single-cycle pulses. The characteristic feature of these pulses relies on a vast momentum transfer to an electron, leading to its displacement following a unidirectional path. The scenario is illustrated by revealing the spatiotemporal nature of the displaced wavepacket encoding a quantum superposition state. We map out the associated phase information and retrieve it over long distances from the origin. Moreover, we show that a sequence of such pulses applied to a chain of ions enables attosecond control of the directionality of the coherent motion of the electron wavepacket back and forth between the neighbouring sites. An extension to a two-electron spin state demonstrates the versatility of the use of these pulses. Our findings establish a promising route for advanced control of quantum states using attosecond single-cycle pulses, which pave the way towards ultrafast processing of quantum information as well as imaging.https://doi.org/10.1038/s41598-020-79004-8
collection DOAJ
language English
format Article
sources DOAJ
author Hicham Agueny
spellingShingle Hicham Agueny
Coherent electron displacement for quantum information processing using attosecond single cycle pulses
Scientific Reports
author_facet Hicham Agueny
author_sort Hicham Agueny
title Coherent electron displacement for quantum information processing using attosecond single cycle pulses
title_short Coherent electron displacement for quantum information processing using attosecond single cycle pulses
title_full Coherent electron displacement for quantum information processing using attosecond single cycle pulses
title_fullStr Coherent electron displacement for quantum information processing using attosecond single cycle pulses
title_full_unstemmed Coherent electron displacement for quantum information processing using attosecond single cycle pulses
title_sort coherent electron displacement for quantum information processing using attosecond single cycle pulses
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2020-12-01
description Abstract Coherent electron displacement is a conventional strategy for processing quantum information, as it enables to interconnect distinct sites in a network of atoms. The efficiency of the processing relies on the precise control of the mechanism, which has yet to be established. Here, we theoretically demonstrate a new route to drive the electron displacement on a timescale faster than that of the dynamical distortion of the electron wavepacket by utilizing attosecond single-cycle pulses. The characteristic feature of these pulses relies on a vast momentum transfer to an electron, leading to its displacement following a unidirectional path. The scenario is illustrated by revealing the spatiotemporal nature of the displaced wavepacket encoding a quantum superposition state. We map out the associated phase information and retrieve it over long distances from the origin. Moreover, we show that a sequence of such pulses applied to a chain of ions enables attosecond control of the directionality of the coherent motion of the electron wavepacket back and forth between the neighbouring sites. An extension to a two-electron spin state demonstrates the versatility of the use of these pulses. Our findings establish a promising route for advanced control of quantum states using attosecond single-cycle pulses, which pave the way towards ultrafast processing of quantum information as well as imaging.
url https://doi.org/10.1038/s41598-020-79004-8
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