Publication:
Impact of native oxide on the vibrational response of silicon nanowires

dc.contributor.coauthorZare Pakzad, S.
dc.contributor.coauthorLoch Gesing, A.
dc.contributor.coauthorSchmid, U.
dc.contributor.coauthorSchneider, M.
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.departmentn2STAR (Koç University Nanofabrication and Nanocharacterization Center for Scientifc and Technological Advanced Research)
dc.contributor.departmentKUYTAM (Koç University Surface Science and Technology Center)
dc.contributor.kuauthorAlaca, Burhanettin Erdem
dc.contributor.schoolcollegeinstituteCollege of Engineering
dc.contributor.schoolcollegeinstituteResearch Center
dc.date.accessioned2026-08-14T11:24:39Z
dc.date.issued2026
dc.description.abstractThe vibrational performance of silicon nanowires is strongly influenced by surface chemistry and crystallographic orientation, particularly at sub-10 nm dimensions. In this study, molecular dynamics simulations are employed to investigate the fundamental out-of-plane vibrational response of double-clamped silicon nanowires with and without an amorphous native oxide layer. Resonance frequencies and quality factors are systematically analyzed across multiple widths, length-to-width aspect ratios, and crystallographic orientations (<100>,<110>,<111>,<112>). The results reveal that the presence of a native oxide layer induces a pronounced reduction in resonance frequency (up to 50%) and dramatically lowers the quality factor by several orders of magnitude, indicating significantly enhanced damping due to surface-induced disorder and energy dissipation. While pristine silicon nanowires exhibit strong orientation-dependent variations in resonance behavior and minimal damping, silicon nanowires with native oxide surface are dominated by surface effects, with crystallographic orientation playing a secondary role. These findings highlight the critical importance of incorporating realistic surface conditions in modeling nanoscale systems and provide key insights for the design and optimization of silicon nanowire-based resonators and MEMS/NEMS devices.
dc.description.harvestedfromManual
dc.description.indexedbyScopus
dc.description.publisherscopeInternational
dc.description.readpublishN/A
dc.description.sponsoredbyTubitakEuTÜBİTAK
dc.description.sponsorshipChristian Doppler Laboratory; TÜBİTAK (Grant: 125E089); Christian Doppler Research Association (Grant: CDL-PiezoMEMS)
dc.description.versionPublished Version
dc.identifier.ScopusPercentile98
dc.identifier.ScopusQuartileQ1
dc.identifier.WoSPercentileN/A
dc.identifier.WoSQuartileN/A
dc.identifier.doi10.1080/15376494.2026.2665810
dc.identifier.eissn1537-6532
dc.identifier.embargoN/A
dc.identifier.grantno125E089
dc.identifier.grantnoCDL-PiezoMEMS
dc.identifier.issn1537-6494
dc.identifier.issue1
dc.identifier.scopus2-s2.0-105038335196
dc.identifier.urihttp://doi.org/10.1080/15376494.2026.2665810
dc.identifier.urihttps://hdl.handle.net/20.500.14288/34481
dc.identifier.volume33
dc.keywordsDamping
dc.keywordsMolecular dynamics
dc.keywordsNative oxide
dc.keywordsResonance
dc.keywordsSilicon nanowires
dc.languageeng
dc.publisherTaylor and Francis
dc.relation.affiliationKoç University
dc.relation.collectionKoç University Institutional Repository
dc.relation.ispartofMechanics of Advanced Materials and Structures
dc.relation.openaccessN/A
dc.rightsN/A
dc.rights.uriN/A
dc.subjectPhysical sciences
dc.subjectEngineering
dc.subjectBiomedical engineering
dc.subjectPhysics and astronomy
dc.subjectMechanical engineering
dc.subjectAnd optics
dc.subjectMaterials science
dc.subjectMaterials chemistry
dc.titleImpact of native oxide on the vibrational response of silicon nanowires
dc.typeJournal Article
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