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dc.contributor.authorGu, Z.en
dc.contributor.authorCui, Q.en
dc.contributor.authorChen, J.en
dc.contributor.authorBuckley, J.en
dc.contributor.authorAndo, T.en
dc.contributor.authorErdeniz, D.en
dc.contributor.authorWong, P.en
dc.contributor.authorHadjiafxenti, A.en
dc.contributor.authorEpaminonda, P.en
dc.contributor.authorGunduz, I. E.en
dc.contributor.authorRebholz, Clausen
dc.contributor.authorDoumanidis, C. C.en
dc.creatorGu, Z.en
dc.creatorCui, Q.en
dc.creatorChen, J.en
dc.creatorBuckley, J.en
dc.creatorAndo, T.en
dc.creatorErdeniz, D.en
dc.creatorWong, P.en
dc.creatorHadjiafxenti, A.en
dc.creatorEpaminonda, P.en
dc.creatorGunduz, I. E.en
dc.creatorRebholz, Clausen
dc.creatorDoumanidis, C. C.en
dc.date.accessioned2019-05-06T12:23:40Z
dc.date.available2019-05-06T12:23:40Z
dc.date.issued2013
dc.identifier.urihttp://gnosis.library.ucy.ac.cy/handle/7/48392
dc.description.abstractNanoheaters are reactive nanostructures that can generate localized heat through controlled ignition. Besides the widely used nanofoil structure with multiple alternative Al-Ni layers, various new nanostructures have been fabricated in the last several years, including consolidated films, bimetallic nanoparticles and nanowires, and ball milled micro/nano powders. In this paper, we demonstrate the (1) Synthesis of Al-Ni bimetallic nanoparticles by a galvanic replacement reaction method using Al nanoparticle templatesen
dc.description.abstract(2) Fabrication of Al-Ni nanowire structures by a two-step process involving electrodeposition and thermal evaporationen
dc.description.abstract(3) Fabrication of Al-Ni composites by a novel ultrasonic powder consolidation method, using Al and Ni nanoparticles as source materials and (4) Synthesis of nanostructured Al-Ni powders by low energy ball milling with microscale Al and Ni powders. The structure and compositions of the nanoheater structures have been characterized by scanning electron microscopy and transmission electron microscopy, energy dispersive X-ray spectroscopy, and X-ray diffraction. The thermal characteristics of the samples were studied using differential scanning calorimetry. These novel nanoheater structures have great potential to be used in micro-joining, microelectronics assembly, and flexible electronics bonding. © 2012 Elsevier B.V.en
dc.language.isoengen
dc.sourceSurface and Coatings Technologyen
dc.subjectAluminumen
dc.subjectPowdersen
dc.subjectX ray diffractionen
dc.subjectBall millingen
dc.subjectTransmission electron microscopyen
dc.subjectEnergy dispersive X ray spectroscopyen
dc.subjectX ray spectroscopyen
dc.subjectScanning electron microscopyen
dc.subjectDifferential scanning calorimetryen
dc.subjectMicroelectronicsen
dc.subjectAl-nanoparticlesen
dc.subjectBall-milleden
dc.subjectBimetallic nanoparticlesen
dc.subjectConsolidated filmsen
dc.subjectElectronics assemblyen
dc.subjectFabricationen
dc.subjectGalvanic replacement reactionen
dc.subjectGalvanic replacement reactionsen
dc.subjectJoiningen
dc.subjectMicro-joiningen
dc.subjectMicro-scalesen
dc.subjectMicroelectronics assemblyen
dc.subjectNano-structureden
dc.subjectNanoheatersen
dc.subjectNanoparticlesen
dc.subjectNanowire structuresen
dc.subjectNanowiresen
dc.subjectNi Nanoparticlesen
dc.subjectNi powderen
dc.subjectPowder consolidationsen
dc.subjectReactive nanostructuresen
dc.subjectSource materialen
dc.subjectSubstitution reactionsen
dc.subjectThermal characteristicsen
dc.subjectThermal evaporationen
dc.subjectTwo-step processen
dc.subjectUltrasonic powder consolidationen
dc.titleFabrication, characterization and applications of novel nanoheater structuresen
dc.typeinfo:eu-repo/semantics/article
dc.identifier.doi10.1016/j.surfcoat.2012.06.095
dc.description.volume215
dc.description.startingpage493
dc.description.endingpage502
dc.author.facultyΠολυτεχνική Σχολή / Faculty of Engineering
dc.author.departmentΤμήμα Μηχανικών Μηχανολογίας και Κατασκευαστικής / Department of Mechanical and Manufacturing Engineering
dc.type.uhtypeArticleen
dc.description.totalnumpages493-502


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