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dc.identifier.urihttp://hdl.handle.net/11401/78331
dc.description.sponsorshipThis work is sponsored by the Stony Brook University Graduate School in compliance with the requirements for completion of degreeen_US
dc.formatMonograph
dc.format.mediumElectronic Resourceen_US
dc.format.mimetypeApplication/PDFen_US
dc.language.isoen_US
dc.typeDissertation
dcterms.abstractAt the core of designing advanced materials for harsh environments involving high temperatures, extreme stresses, and aggressive irradiation conditions lies unprecedented thermal stability. Refractory metals are inherently suited for extreme temperature applications due to their high melting points, and recent focus has been placed on engineering nanocrystalline structures into these materials to enhance other key properties such as strength and radiation tolerance. Significant insights into the underlying mechanisms have been gained through advanced in situ transmission electron microscopy (TEM) techniques, which enable precise probing of nanoscale grain and defect structures under extreme conditions. First, amorphous tantalum films, deposited to a thickness of 20 nm, were in situ heat treated at temperatures over the range of 800-1200C to study the phases crystallized and their stability through devitrification. Quantitative image analysis of the electron diffraction patterns revealed a multiphase nanostructure composed of metastable tantalum films. These films, deposited to a thickness of 100 nm, were annealed in situ to characterize the stability of the nanostructure and grain growth up to 1200C. Examination of the bright-field images and diffraction patterns revealed limited grain growth at temperatures up to 40% of the melting point due to the presence of impurities at the grain boundaries. Finally, these techniques were applied in nanocrystalline tungsten thin films, 20 nm thick, to quantify grain growth behavior up to 1000C as a function of alloying state. Nominally pure nanocrystalline tungsten exhibited a bimodal grain growth succumbing to an equiaxed structure, while alloyed structures exhibited limited grain growth behavior attributed to compositional inhomogeneities such as grain boundary segregation. Self-ion irradiation, using 3 MeV W4+ ions, was employed to contrast damage states in unalloyed nanocrystalline tungsten relative to solute-stabilized tungsten alloys, from which design strategies were identified for enhancing their stability and radiation tolerance for nuclear engineering applications.
dcterms.available2018-07-09T13:28:46Z
dcterms.contributorTrelewicz, Jason R.en_US
dcterms.contributorSnead, Lanceen_US
dcterms.contributorStach, Ericen_US
dcterms.contributorMuntifering, Brittanyen_US
dcterms.contributorHattar, Khalid.en_US
dcterms.creatorDonaldson, Olivia
dcterms.dateAccepted2018-07-09T13:28:46Z
dcterms.dateSubmitted2018-07-09T13:28:46Z
dcterms.descriptionDepartment of Materials Science and Engineering.en_US
dcterms.extent213 pg.en_US
dcterms.formatMonograph
dcterms.identifierDonaldson_grad.sunysb_0771E_13387.pdfen_US
dcterms.identifierhttp://hdl.handle.net/11401/78331
dcterms.issued2017-08-01
dcterms.languageen_US
dcterms.provenanceSubmitted by Jason Torre (fjason.torre@stonybrook.edu) on 2018-07-09T13:28:46Z No. of bitstreams: 1 Donaldson_grad.sunysb_0771E_13387.pdf: 6986747 bytes, checksum: d91f4ab6de50c5771a0df3615e113268 (MD5)en
dcterms.provenanceMade available in DSpace on 2018-07-09T13:28:46Z (GMT). No. of bitstreams: 1 Donaldson_grad.sunysb_0771E_13387.pdf: 6986747 bytes, checksum: d91f4ab6de50c5771a0df3615e113268 (MD5) Previous issue date: 2017-08-01en
dcterms.subjectMaterials science
dcterms.subjectradiation damage
dcterms.subjecttantalum
dcterms.subjectthermal stability
dcterms.subjectthin films
dcterms.subjecttungsten
dcterms.titleThermal Stability and Self-Ion Damage in Nanocrystalline Refractory Metals
dcterms.typeDissertation


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