Publication:
High-resolution spatiotemporal strain mapping reveals non-uniform deformation in micropatterned elastomers

dc.contributor.departmentN/A
dc.contributor.departmentN/A
dc.contributor.departmentDepartment of Chemistry
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.kuauthorAksoy, Bekir
dc.contributor.kuauthorRehman, Ateeq Ur
dc.contributor.kuauthorBayraktar, Halil
dc.contributor.kuauthorAlaca, Burhanettin Erdem
dc.contributor.kuprofileMaster Student
dc.contributor.kuprofilePhD Student
dc.contributor.kuprofileFaculty Member
dc.contributor.kuprofileFaculty Member
dc.contributor.otherDepartment of Chemistry
dc.contributor.otherDepartment of Mechanical Engineering
dc.contributor.researchcenterKoç University Surface Science and Technology Center (KUYTAM) / Koç Üniversitesi Yüzey Teknolojileri Araştırmaları Merkezi (KUYTAM)
dc.contributor.schoolcollegeinstituteGraduate School of Sciences and Engineering
dc.contributor.schoolcollegeinstituteGraduate School of Sciences and Engineering
dc.contributor.schoolcollegeinstituteCollege of Sciences
dc.contributor.schoolcollegeinstituteCollege of Engineering
dc.contributor.yokidN/A
dc.contributor.yokidN/A
dc.contributor.yokid201764
dc.contributor.yokid115108
dc.date.accessioned2024-11-09T23:12:00Z
dc.date.issued2017
dc.description.abstractMicropatterns are generated on a vast selection of polymeric substrates for various applications ranging from stretchable electronics to cellular mechanobiological systems. When these patterned substrates are exposed to external loading, strain field is primarily affected by the presence of microfabricated structures and similarly by fabrication-related defects. The capturing of such nonhomogeneous strain fields is of utmost importance in cases where study of the mechanical behavior with a high spatial resolution is necessary. Image-based non-contact strain measurement techniques are favorable and have recently been extended to scanning tunneling microscope and scanning electron microscope images for the characterization of mechanical properties of metallic materials, e.g. steel and aluminum, at the microscale. A similar real-time analysis of strain heterogeneity in elastomers is yet to be achieved during the entire loading sequence. The available measurement methods for polymeric materials mostly depend on cross-head displacement or precalibrated strain values. Thus, they suffer either from the lack of any real-time analysis, spatiotemporal distribution or high resolution in addition to a combination of these factors. In this work, these challenges are addressed by integrating a tensile stretcher with an inverted optical microscope and developing a subpixel particle tracking algorithm. As a proof of concept, the patterns with a critical dimension of 200 mu m are generated on polydimethylsiloxane substrates and strain distribution in the vicinity of the patterns is captured with a high spatiotemporal resolution. In the field of strain measurement, there is always a tradeoff between minimum measurable strain value and spatial resolution. Current noncontact techniques on elastomers can deliver a strain resolution of 0.001% over a minimum length of 5 cm. More importantly, inhomogeneities within this quite large region cannot be captured. The proposed technique can overcome this challenge and provides a displacement measurement resolution of 116 nm and a strain resolution of 0.04% over a gage length of 300 mu m. Similarly, the ability to capture inhomogeneities is demonstrated by mapping strain around a thru-hole. The robustness of the technique is also evaluated, where no appreciable change in strain measurement is observed despite the significant variations imposed on the measurement mesh. The proposed approach introduces critical improvements for the determination of displacement and strain gradients in elastomers regarding the real-time nature of strain mapping with a microscale spatial resolution.
dc.description.indexedbyWoS
dc.description.indexedbyScopus
dc.description.issue4
dc.description.openaccessNO
dc.description.publisherscopeInternational
dc.description.sponsoredbyTubitakEuTÜBİTAK
dc.description.sponsorshipScientific and Technological Research Council of Turkey (TÜBİTAK)
dc.description.volume27
dc.identifier.doi10.1088/1361-6439/aa6058
dc.identifier.eissn1361-6439
dc.identifier.issn0960-1317
dc.identifier.scopus2-s2.0-85016461486
dc.identifier.urihttp://dx.doi.org/10.1088/1361-6439/aa6058
dc.identifier.urihttps://hdl.handle.net/20.500.14288/9744
dc.identifier.wos415650500001
dc.keywordsStrain mapping
dc.keywordsSpatiotemporal analysis
dc.keywordsMicropatterned elastomer
dc.keywordsNon-uniform strain distribution
dc.languageEnglish
dc.publisherIop Publishing Ltd
dc.relation.grantno112E580
dc.relation.grantno112T823
dc.sourceJournal of Micromechanics and Microengineering
dc.subjectEngineering, electrical and electronic
dc.subjectNanoscience
dc.subjectNanotechnology
dc.subjectInstruments and instrumentation
dc.subjectPhysics, applied
dc.titleHigh-resolution spatiotemporal strain mapping reveals non-uniform deformation in micropatterned elastomers
dc.typeJournal Article
dspace.entity.typePublication
local.contributor.authorid0000-0001-6016-4590
local.contributor.authoridN/A
local.contributor.authorid0000-0002-8237-5345
local.contributor.authorid0000-0001-5931-8134
local.contributor.kuauthorAksoy, Bekir
local.contributor.kuauthorRehman, Ateeq Ur
local.contributor.kuauthorBayraktar, Halil
local.contributor.kuauthorAlaca, Burhanettin Erdem
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relation.isOrgUnitOfPublication.latestForDiscovery035d8150-86c9-4107-af16-a6f0a4d538eb

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