Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework

A major research theme to emerge in the science and technology of materials is the incorporation of nanostructure into the functionality of properties. Such nanostructured materials can offer distinct advantages over bulk materials, partly because the physical properties of the material itself can v...

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Main Authors: Sartbaeva, A, Wells, SA, Sommariva, M, Lodge, M, Jones, M, Ramirez-Cuesta, A, Li, G, Edwards, P
Format: Journal article
Language:English
Published: 2010
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author Sartbaeva, A
Wells, SA
Sommariva, M
Lodge, M
Jones, M
Ramirez-Cuesta, A
Li, G
Edwards, P
author_facet Sartbaeva, A
Wells, SA
Sommariva, M
Lodge, M
Jones, M
Ramirez-Cuesta, A
Li, G
Edwards, P
author_sort Sartbaeva, A
collection OXFORD
description A major research theme to emerge in the science and technology of materials is the incorporation of nanostructure into the functionality of properties. Such nanostructured materials can offer distinct advantages over bulk materials, partly because the physical properties of the material itself can vary in a tunable, size-dependent fashion. Of course, in addition, nanoparticles offer a greatly increased surface area for chemical reaction. Typical methods for nanoparticle synthesis include: reaction in the liquid phase using the sol-gel approach and mechanical ball-milling of the bulk material; both of these approaches are somewhat problematic for the preparation of reactive nanostructured materials which are sensitive to air and/or moisture. We report here the formation of crystalline nanoparticles of sodium hydride encapsulated in a host amorphous silica gel matrix. These nanoparticles are formed by in situ hydrogenation of a precursor material-Na loaded silica gel-under mild conditions. The resulting material is considerably less pyrophoric and less air-sensitive than the bulk hydride. We anticipate that this formation method of in situ modification of reactive precursor material may have wide applications. © 2010 Springer Science+Business Media, LLC.
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spelling oxford-uuid:57b05370-afe9-406f-ba4d-41122589533b2022-03-26T16:58:15ZFormation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous FrameworkJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:57b05370-afe9-406f-ba4d-41122589533bEnglishSymplectic Elements at Oxford2010Sartbaeva, AWells, SASommariva, MLodge, MJones, MRamirez-Cuesta, ALi, GEdwards, PA major research theme to emerge in the science and technology of materials is the incorporation of nanostructure into the functionality of properties. Such nanostructured materials can offer distinct advantages over bulk materials, partly because the physical properties of the material itself can vary in a tunable, size-dependent fashion. Of course, in addition, nanoparticles offer a greatly increased surface area for chemical reaction. Typical methods for nanoparticle synthesis include: reaction in the liquid phase using the sol-gel approach and mechanical ball-milling of the bulk material; both of these approaches are somewhat problematic for the preparation of reactive nanostructured materials which are sensitive to air and/or moisture. We report here the formation of crystalline nanoparticles of sodium hydride encapsulated in a host amorphous silica gel matrix. These nanoparticles are formed by in situ hydrogenation of a precursor material-Na loaded silica gel-under mild conditions. The resulting material is considerably less pyrophoric and less air-sensitive than the bulk hydride. We anticipate that this formation method of in situ modification of reactive precursor material may have wide applications. © 2010 Springer Science+Business Media, LLC.
spellingShingle Sartbaeva, A
Wells, SA
Sommariva, M
Lodge, M
Jones, M
Ramirez-Cuesta, A
Li, G
Edwards, P
Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title_full Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title_fullStr Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title_full_unstemmed Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title_short Formation of Crystalline Sodium Hydride Nanoparticles Encapsulated Within an Amorphous Framework
title_sort formation of crystalline sodium hydride nanoparticles encapsulated within an amorphous framework
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