Synthesis of New Magnetic Nanocomposite Materials for Data Storage

The confinement of magnetic nanoparticles (Prussian blue analogues (PBAs) has been achieved using mesostructured silica as a matrix. The PBAs have the general formula AxMy[M'(CN)n]z, where A is an alkali metal cation; M: CoII, NiII, SmIII; and M': CoII. The two reactions were run in parall...

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Main Author: Alamri, Haleema
Language:en
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/10012/6846
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spelling ndltd-WATERLOO-oai-uwspace.uwaterloo.ca-10012-68462013-01-08T18:55:43ZAlamri, Haleema2012-08-09T20:11:37Z2012-08-09T20:11:37Z2012-08-09T20:11:37Z2012http://hdl.handle.net/10012/6846The confinement of magnetic nanoparticles (Prussian blue analogues (PBAs) has been achieved using mesostructured silica as a matrix. The PBAs have the general formula AxMy[M'(CN)n]z, where A is an alkali metal cation; M: CoII, NiII, SmIII; and M': CoII. The two reactions were run in parallel and led to a mesostructured silica matrix that contains nanoparticles of PBA homogeneously distributed within the silica framework. As initially reported for the synthesis of Co3[Fe(CN)6]2 magnetic nanoparticles, in the research conducted for this thesis, this synthesis has been extended to other compounds and to lanthanides such as Sm and has also included the study of the influence of different parameters (pH, concentration). As these nanocomposites are potentially good candidates for the preparation of bimetallic nanoparticles and oxides through controlled thermal treatment, the second goal of the research was to employ an adapted thermal treatment in order to prepare metal and metal oxide nanoparticles from PBA, directly embedded in the silica matrix. To this end, the influence of the thermal treatment (temperature, time, atmosphere) on the nature and structure of the resulting materials was investigated, with a focus on the potential use of the combustion of the organic templates as in-situ reducing agents. For some compounds, the preparation of bimetallic nanoparticles was successful. This method was tentatively applied to the preparation of specific Sm:Co bimetallic compounds, are well known as one of the best permanent magnets currently available.ensynthesis of New Magnetic Nanocomposite Materialsdata StorageSynthesis of New Magnetic Nanocomposite Materials for Data StorageThesis or DissertationChemistryMaster of ScienceChemistry
collection NDLTD
language en
sources NDLTD
topic synthesis of New Magnetic Nanocomposite Materials
data Storage
Chemistry
spellingShingle synthesis of New Magnetic Nanocomposite Materials
data Storage
Chemistry
Alamri, Haleema
Synthesis of New Magnetic Nanocomposite Materials for Data Storage
description The confinement of magnetic nanoparticles (Prussian blue analogues (PBAs) has been achieved using mesostructured silica as a matrix. The PBAs have the general formula AxMy[M'(CN)n]z, where A is an alkali metal cation; M: CoII, NiII, SmIII; and M': CoII. The two reactions were run in parallel and led to a mesostructured silica matrix that contains nanoparticles of PBA homogeneously distributed within the silica framework. As initially reported for the synthesis of Co3[Fe(CN)6]2 magnetic nanoparticles, in the research conducted for this thesis, this synthesis has been extended to other compounds and to lanthanides such as Sm and has also included the study of the influence of different parameters (pH, concentration). As these nanocomposites are potentially good candidates for the preparation of bimetallic nanoparticles and oxides through controlled thermal treatment, the second goal of the research was to employ an adapted thermal treatment in order to prepare metal and metal oxide nanoparticles from PBA, directly embedded in the silica matrix. To this end, the influence of the thermal treatment (temperature, time, atmosphere) on the nature and structure of the resulting materials was investigated, with a focus on the potential use of the combustion of the organic templates as in-situ reducing agents. For some compounds, the preparation of bimetallic nanoparticles was successful. This method was tentatively applied to the preparation of specific Sm:Co bimetallic compounds, are well known as one of the best permanent magnets currently available.
author Alamri, Haleema
author_facet Alamri, Haleema
author_sort Alamri, Haleema
title Synthesis of New Magnetic Nanocomposite Materials for Data Storage
title_short Synthesis of New Magnetic Nanocomposite Materials for Data Storage
title_full Synthesis of New Magnetic Nanocomposite Materials for Data Storage
title_fullStr Synthesis of New Magnetic Nanocomposite Materials for Data Storage
title_full_unstemmed Synthesis of New Magnetic Nanocomposite Materials for Data Storage
title_sort synthesis of new magnetic nanocomposite materials for data storage
publishDate 2012
url http://hdl.handle.net/10012/6846
work_keys_str_mv AT alamrihaleema synthesisofnewmagneticnanocompositematerialsfordatastorage
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