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Polymer tribology by combining ion implantation and radionuclide tracing

dc.contributor.authorTimmers, Heiko
dc.contributor.authorGladkis, Laura
dc.contributor.authorWarner, Jacob A
dc.contributor.authorByrne, Aidan
dc.contributor.authordel Grosso, Mariela F.
dc.contributor.authorArbeitman, Claudia R.
dc.contributor.authorGarcia-Bermudez, Gerardo
dc.contributor.authorGeruschke, T.
dc.contributor.authorVianden, R
dc.date.accessioned2015-12-10T22:40:56Z
dc.date.issued2010
dc.date.updated2016-02-24T10:38:59Z
dc.description.abstractRadionuclide tracers were ion implanted with three different techniques into the ultra-high molecular weight polyethylene polymer. Tracer nuclei of 7Be were produced with inverse kinematics via the reaction p(7Li,7Be)n and caught by polymer samples at a forward scattering angle with a maximum implantation energy of 16 MeV. For the first time, 97Ru, 100Pd, and, independently, 111In have been used as radionuclide tracers in ultra-high molecular weight polyethylene. 97Ru and 100Pd were recoil-implanted following the fusion evaporation reactions 92Zr(12C,α3n) 97Ru and 92Zr(12C,4n)100Pd with a maximum implantation energy of 8 MeV. 111In ions were produced in an ion source, mass-separated and implanted at 160 keV. The tribology of implanted polymer samples was studied by tracing the radionuclide during mechanical wear. Uni-directional and bi-directional sliding apparatus with stainless steel actuators were used. Results suggest a debris exchange process as the characteristic feature of the wear-in phase. This process can establish the steady state required for a subsequently constant wear rate in agreement with Archard's equation. The nano-scale implantation of mass-separated 111In appears best suited to the study of non-linear tribological processes during wear-in. Such non-linear processes may be expected to be important in micro- and nanomachines.
dc.identifier.issn0168-583X
dc.identifier.urihttp://hdl.handle.net/1885/57661
dc.publisherElsevier
dc.sourceNuclear Instruments and Methods in Physics Research: Section B
dc.subjectKeywords: Archard's equation; Bi-directional; Exchange process; Fusion-evaporation reactions; Implantation energies; In-phase; Ion implanted; Mechanical wear; Micromachines; Nano scale; Nanomachines; Non-linear; Nonlinear process; Polymer samples; Polymer tribology Ion implantation; Micromachines; Radionuclide tracing; Tribology; Wear-in phase
dc.titlePolymer tribology by combining ion implantation and radionuclide tracing
dc.typeJournal article
local.bibliographicCitation.lastpage2123
local.bibliographicCitation.startpage2119
local.contributor.affiliationTimmers, Heiko, University of New South Wales, ADFA
local.contributor.affiliationGladkis, Laura, University of New South Wales, ADFA
local.contributor.affiliationWarner, Jacob A, University of New South Wales, ADFA
local.contributor.affiliationByrne, Aidan, College of Physical and Mathematical Sciences, ANU
local.contributor.affiliationdel Grosso, Mariela F. , Laboratorio Tandar
local.contributor.affiliationArbeitman, Claudia R., Laboratorio Tandar
local.contributor.affiliationGarcia-Bermudez, Gerardo, Laboratorio Tandar
local.contributor.affiliationGeruschke, T., university of Bonn
local.contributor.affiliationVianden, R, Helmholtz Institute for Radiation and Nuclear Physics
local.contributor.authoruidByrne, Aidan, u8900906
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor020202 - Nuclear Physics
local.identifier.ariespublicationu4155331xPUB410
local.identifier.citationvolume268
local.identifier.doi10.1016/j.nimb.2010.02.019
local.identifier.scopusID2-s2.0-77953128172
local.identifier.thomsonID000278702300093
local.type.statusPublished Version

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