Title of article
Fabrication, microstructure, and mechanical properties of tin nanostructures
Author/Authors
Burek، نويسنده , , Michael J. and Budiman، نويسنده , , Arief Suriadi and Jahed، نويسنده , , Zeinab and Tamura، نويسنده , , Nobumichi and Kunz، نويسنده , , Martin Ming Jin، نويسنده , , Sumin and Han، نويسنده , , Seung Min J. and Lee، نويسنده , , Gyuhyon and Zamecnik، نويسنده , , Colin and Tsui، نويسنده , , Ting Y.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2011
Pages
11
From page
5822
To page
5832
Abstract
Vertically aligned, cylindrical tin nanopillars have been fabricated via an electron beam lithography and electroplating method. Characterization by a non-destructive synchrotron X-ray microdiffraction (μSXRD) technique revealed that the tin nanostructures are body-centered tetragonal and are likely single-crystalline, or consist of a few large grains. The mechanical properties of tin nanopillars with average diameters of 920 nm, 560 nm, and 350 nm were studied by uniaxial compression in a nanoindenter outfitted with a flat punch diamond tip. The results of compression tests reveal strain rate sensitivity for nanoscale tin deformation, which matches closely to the previously reported bulk tin values. However, unlike bulk, tin nanopillars exhibit size-dependent flow stresses where smaller diameter specimens exhibit greater attained strengths. The observed size-dependence matches closely to that previously reported for single-crystalline face centered cubic metals at the nanoscale. μSXRD data was used to compare the dislocation density between as-fabricated and deformed tin nanopillars. Results of this comparison suggest that there is no measurable accumulation of dislocations within deformed tin nanopillars.
Keywords
Nanoindentation , Nanostructure , Yield phenomenon , size effects , Plastic deformation
Journal title
MATERIALS SCIENCE & ENGINEERING: A
Serial Year
2011
Journal title
MATERIALS SCIENCE & ENGINEERING: A
Record number
2167851
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