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Structural and vibrational properties of Co nanoparticles formed by ion implantation

dc.contributor.authorSprouster, D. J.
dc.contributor.authorGiulian, R.
dc.contributor.authorAraujo, L. L.
dc.contributor.authorKluth, P.
dc.contributor.authorJohannessen, B.
dc.contributor.authorCookson, D. J.
dc.contributor.authorForan, G. J.
dc.contributor.authorRidgway, M. C.
dc.date.accessioned2015-12-03T00:16:14Z
dc.date.available2015-12-03T00:16:14Z
dc.date.issued2010
dc.date.updated2015-12-08T02:54:47Z
dc.description.abstractWe report on the structural and vibrational properties of Co nanoparticles formed by ion implantation and thermal annealing in amorphous silica. The evolution of the nanoparticle size, phase, and structural parameters were determined as a function of the formation conditions using transmission electron microscopy, small-angle x-ray scattering, and x-ray absorption spectroscopy. The implantation fluence and annealing temperature governed the spherical nanoparticle size and phase. To determine the latter, x-ray absorption near-edge structure analysis was used to quantify the hexagonal close packed, face-centered cubic and oxide fractions. The structural properties were characterized by extended x-ray absorption fine structure spectroscopy (EXAFS) and finite-size effects were readily apparent. With a decrease in nanoparticle size, an increase in structural disorder and a decrease in both coordination number and bondlength were observed as consistent with the non-negligible surface-area-to-volume ratio characteristic of nanoparticles. The surface tension of Co nanoparticles calculated using a liquid drop model was more than twice that of bulk material. The size-dependent vibrational properties were probed with temperature-dependent EXAFS measurements. Using a correlated anharmonic Einstein model and thermodynamic perturbation theory, Einstein temperatures for both nanoparticles and bulk material were determined. Compared to bulk Co, the mean vibrational frequency of the smallest nanoparticles was reduced as attributed to a greater influence of loosely bonded, undercoordinated surface atoms relative to the effect of capillary pressure generated by surface curvature.
dc.description.sponsorshipThis work was financially supported by the Australian Synchrotron and the Australian Research Council. ChemMatCARS Sector 15 is principally supported by the National Science Foundation/Department of Energy under Grant No. NSF/CHE-0822838. Use of the Advanced Photon Source was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No. DE-AC02-06CH11357.en_AU
dc.format11 pages
dc.identifier.issn0021-8979en_AU
dc.identifier.urihttp://hdl.handle.net/1885/16984
dc.publisherAmerican Institute of Physics (AIP)
dc.rights© 2010 American Institute of Physics. AIP Publishing. This article may be downloaded for personal use only. Any other use requires prior permission of the author and AIP Publishing. The following article appeared in Journal of Applied Physics and may be found at http://doi.org/10.1063/1.3275052 http://publishing.aip.org/authors/copyright-reuse http://www.sherpa.ac.uk/romeo/issn/0021-8979/ Author can archive publisher's version/PDF (Sherpa/Romeo as of 3/12/2015).
dc.sourceJournal of Applied Physics
dc.subjectstructural and vibrational properties
dc.subjectCo nanoparticles
dc.subjectthermal annealing
dc.subjectamorphous silica
dc.subjectnanoparticle size
dc.subjectstructural parameters
dc.subjecttransmission electron microscopy
dc.subjectsmall-angle x-ray scattering
dc.subjectx-ray absorption spectroscopy.
dc.subjectimplantation fluence
dc.subjectannealing temperature
dc.subjectspherical nanoparticle size
dc.titleStructural and vibrational properties of Co nanoparticles formed by ion implantation
dc.typeJournal article
dcterms.dateAccepted2009-11-11
local.bibliographicCitation.issue1en_AU
local.bibliographicCitation.lastpage10
local.bibliographicCitation.startpage014313en_AU
local.contributor.affiliationSprouster, David, College of Physical and Mathematical Sciences, CPMS Research School of Physics and Engineering, Department of Electronic Materials Engineering, The Australian National Universityen_AU
local.contributor.affiliationGiulian, Raquel, College of Physical and Mathematical Sciences, CPMS Research School of Physics and Engineering, Department of Electronic Materials Engineering, The Australian National Universityen_AU
local.contributor.affiliationAraujo, Leandro, College of Physical and Mathematical Sciences, CPMS Research School of Physics and Engineering, Department of Electronic Materials Engineering, The Australian National Universityen_AU
local.contributor.affiliationKluth, Patrick, College of Physical and Mathematical Sciences, CPMS Research School of Physics and Engineering, Department of Electronic Materials Engineering, The Australian National Universityen_AU
local.contributor.affiliationJohannessen, B, Australian Nuclear Science and Technology Organisation, Australiaen_AU
local.contributor.affiliationCookson, D J, Australian Nuclear Science and Technology Organisation, Australiaen_AU
local.contributor.affiliationForan, Garry J, Australian Nuclear Science and Technology Organisation, Australiaen_AU
local.contributor.affiliationRidgway, Mark C, College of Physical and Mathematical Sciences, CPMS Research School of Physics and Engineering, Department of Electronic Materials Engineering, The Australian National Universityen_AU
local.contributor.authoruidu4301091en_AU
local.description.notesImported from ARIESen_AU
local.identifier.absfor020406en_AU
local.identifier.absfor100799en_AU
local.identifier.ariespublicationu4363964xPUB8en_AU
local.identifier.citationvolume107en_AU
local.identifier.doi10.1063/1.3275052en_AU
local.identifier.essn1089-7550en_AU
local.identifier.scopusID2-s2.0-75649087370
local.identifier.thomsonID000273689600087
local.publisher.urlhttps://www.aip.org/en_AU
local.type.statusPublished Versionen_AU

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