Mechanochemical Continuum Modeling of Nanovoid Nucleation and Growth in Reacting Nanoparticles

dc.contributor.author Levitas, Valery
dc.contributor.author Attariani, Hamed
dc.contributor.department Department of Aerospace Engineering
dc.date 2018-02-13T18:15:37.000
dc.date.accessioned 2020-06-29T22:45:54Z
dc.date.available 2020-06-29T22:45:54Z
dc.date.copyright Sun Jan 01 00:00:00 UTC 2012
dc.date.embargo 2013-11-26
dc.date.issued 2012-01-12
dc.description.abstract <p>Hollow nanoparticles (NPs) are produced by void nucleation and growth during chemical reactions. However, there is no proper understanding of nucleation and growth mechanisms and their predictive modeling. Models based on the Kirkendall effect predict the process time, which is larger by orders of magnitude than in experiment. This is why some works propose that a large tensile pressure in the core causes void nucleation. Here, a continuum-mechanics approach for nucleation and growth of a nanovoid in reacting NPs based on the Kirkendall effect is developed. In contrast to previous approaches, void nucleation and the effects of stresses are treated explicitly. The void nucleation condition vs pressure, temperature, size of a vacancy, core material, and initial reaction product layer is determined, and a strong multifaceted effect of mechanics is revealed. Thus, with mechanics, a cluster consisting of four vacancies represents the supercritical nucleus. Surprisingly, the core is under compression (which eliminates fracture hypothesis), and compressive pressure and reduced temperature promote void nucleation by decreasing the equilibrium concentration of vacancies at the void surface. However, they suppress void growth by reducing the diffusion coefficients. Our model quantitatively describes the experimental results for oxidation of copper NPs. A thermomechanical loading program is suggested to accelerate and control void nucleation and growth.</p>
dc.description.comments <p>Posted with permission from Journal of Physical Chemistry C 118 (2012): 54–62, doi:<a href="http://dx.doi.org/10.1021/jp2055365" target="_blank">10.1021/jp2055365</a>. Copyright 2012 American Chemical Society.</p>
dc.format.mimetype application/pdf
dc.identifier archive/lib.dr.iastate.edu/aere_pubs/36/
dc.identifier.articleid 1035
dc.identifier.contextkey 4856204
dc.identifier.s3bucket isulib-bepress-aws-west
dc.identifier.submissionpath aere_pubs/36
dc.identifier.uri https://dr.lib.iastate.edu/handle/20.500.12876/2035
dc.language.iso en
dc.source.bitstream archive/lib.dr.iastate.edu/aere_pubs/36/2012_LevitasVI_MechanochemicalContinuumModeling.pdf|||Fri Jan 14 23:46:12 UTC 2022
dc.source.uri 10.1021/jp2055365
dc.subject.disciplines Aerospace Engineering
dc.subject.disciplines Materials Science and Engineering
dc.subject.disciplines Mechanical Engineering
dc.subject.disciplines Physical Chemistry
dc.subject.keywords Mechanical Engineering
dc.subject.keywords Materials Science and Engineering
dc.title Mechanochemical Continuum Modeling of Nanovoid Nucleation and Growth in Reacting Nanoparticles
dc.type article
dc.type.genre article
dspace.entity.type Publication
relation.isAuthorOfPublication 850871e3-115a-428e-82cc-cbfafef5cf66
relation.isOrgUnitOfPublication 047b23ca-7bd7-4194-b084-c4181d33d95d
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