Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations

Positronium atoms (Ps) are commonly employed as a probe to characterize nanometric or subnanometric voids or vacancies in nonmetallic materials, where Ps can end up confined. The annihilation lifetime of a trapped Ps is strongly modified by pickoff and depends on the cavity size and on the electron...

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Main Authors: Fabrizio Castelli, Giovanni Consolati, Giacomo Tanzi Marlotti
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/11/9/2350
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spelling doaj-7d71e56cb04d49259bcfd55fef9c42602021-09-26T00:48:55ZengMDPI AGNanomaterials2079-49912021-09-01112350235010.3390/nano11092350Positronium Confined in Nanocavities: The Role of Electron Exchange CorrelationsFabrizio Castelli0Giovanni Consolati1Giacomo Tanzi Marlotti2Department of Physics “Aldo Pontremoli”, Università Degli Studi di Milano, Via Celoria 16, I-20133 Milano, ItalyINFN, Sezione di Milano, Via Celoria 16, I-20133 Milano, ItalyDepartment of Physics “Aldo Pontremoli”, Università Degli Studi di Milano, Via Celoria 16, I-20133 Milano, ItalyPositronium atoms (Ps) are commonly employed as a probe to characterize nanometric or subnanometric voids or vacancies in nonmetallic materials, where Ps can end up confined. The annihilation lifetime of a trapped Ps is strongly modified by pickoff and depends on the cavity size and on the electron density in the confining cavity surface. Here, we develop a theory of the Ps annihilation in nanocavities based on the fundamental role of the exchange correlations between the Ps-electron and the outer electrons, which are not usually considered but must be considered to correctly theorize the pickoff annihilation processes. We obtain an important relation connecting the two relevant annihilation rates (for the <i>p</i>-Ps and the <i>o</i>-Ps) with the electron density, which has the property of being totally independent of the geometrical characteristics of the nanoporous medium. This general relation can be used to gather information on the electron density and on the average cavity radius of the confining medium, starting from the experimental data on PALS annihilation spectra. Moreover, by analyzing our results, we also highlight that a reliable interpretation of the PALS spectra can only be obtained if the rule of 1/3 between the intensities of <i>p</i>-Ps and <i>o</i>-Ps lifetimes can be fulfilled.https://www.mdpi.com/2079-4991/11/9/2350nanoporous materialspositroniumexchange correlations
collection DOAJ
language English
format Article
sources DOAJ
author Fabrizio Castelli
Giovanni Consolati
Giacomo Tanzi Marlotti
spellingShingle Fabrizio Castelli
Giovanni Consolati
Giacomo Tanzi Marlotti
Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
Nanomaterials
nanoporous materials
positronium
exchange correlations
author_facet Fabrizio Castelli
Giovanni Consolati
Giacomo Tanzi Marlotti
author_sort Fabrizio Castelli
title Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
title_short Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
title_full Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
title_fullStr Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
title_full_unstemmed Positronium Confined in Nanocavities: The Role of Electron Exchange Correlations
title_sort positronium confined in nanocavities: the role of electron exchange correlations
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2021-09-01
description Positronium atoms (Ps) are commonly employed as a probe to characterize nanometric or subnanometric voids or vacancies in nonmetallic materials, where Ps can end up confined. The annihilation lifetime of a trapped Ps is strongly modified by pickoff and depends on the cavity size and on the electron density in the confining cavity surface. Here, we develop a theory of the Ps annihilation in nanocavities based on the fundamental role of the exchange correlations between the Ps-electron and the outer electrons, which are not usually considered but must be considered to correctly theorize the pickoff annihilation processes. We obtain an important relation connecting the two relevant annihilation rates (for the <i>p</i>-Ps and the <i>o</i>-Ps) with the electron density, which has the property of being totally independent of the geometrical characteristics of the nanoporous medium. This general relation can be used to gather information on the electron density and on the average cavity radius of the confining medium, starting from the experimental data on PALS annihilation spectra. Moreover, by analyzing our results, we also highlight that a reliable interpretation of the PALS spectra can only be obtained if the rule of 1/3 between the intensities of <i>p</i>-Ps and <i>o</i>-Ps lifetimes can be fulfilled.
topic nanoporous materials
positronium
exchange correlations
url https://www.mdpi.com/2079-4991/11/9/2350
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AT giovanniconsolati positroniumconfinedinnanocavitiestheroleofelectronexchangecorrelations
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