Andrew T. Jennings, Ph.D.

Affiliations: 
2012 Materials Science California Institute of Technology, Pasadena, CA 
Area:
materials science
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"Andrew Jennings"
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SNBCP
Cross-listing: Materials Tree

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Julia R. Greer grad student 2012 Caltech
 (Deformation mechanisms in nanoscale single crystalline electroplated copper pillars.)
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Publications

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Uhl JT, Pathak S, Schorlemmer D, et al. (2015) Universal Quake Statistics: From Compressed Nanocrystals to Earthquakes. Scientific Reports. 5: 16493
Jennings AT, Weinberger CR, Lee SW, et al. (2013) Modeling dislocation nucleation strengths in pristine metallic nanowires under experimental conditions Acta Materialia. 61: 2244-2259
Lee SW, Jennings AT, Greer JR. (2013) Emergence of enhanced strengths and Bauschinger effect in conformally passivated copper nanopillars as revealed by dislocation dynamics Acta Materialia. 61: 1872-1885
Friedman N, Jennings AT, Tsekenis G, et al. (2012) Statistics of dislocation slip avalanches in nanosized single crystals show tuned critical behavior predicted by a simple mean field model. Physical Review Letters. 109: 095507
Weinberger CR, Jennings AT, Kang K, et al. (2012) Atomistic simulations and continuum modeling of dislocation nucleation and strength in gold nanowires Journal of the Mechanics and Physics of Solids. 60: 84-103
Jennings AT, Gross C, Greer F, et al. (2012) Higher compressive strengths and the Bauschinger effect in conformally passivated copper nanopillars Acta Materialia. 60: 3444-3455
Jennings AT, Greer JR. (2011) Heterogeneous dislocation nucleation from surfaces and interfaces as governing plasticity mechanism in nanoscale metals Journal of Materials Research. 26: 2803-2814
Jennings AT, Greer JR. (2011) Tensile deformation of electroplated copper nanopillars Philosophical Magazine. 91: 1108-1120
Jennings AT, Li J, Greer JR. (2011) Emergence of strain-rate sensitivity in Cu nanopillars: Transition from dislocation multiplication to dislocation nucleation Acta Materialia. 59: 5627-5637
Kaul AB, Megerian KG, Jennings AT, et al. (2010) In situ characterization of vertically oriented carbon nanofibers for three-dimensional nano-electro-mechanical device applications. Nanotechnology. 21: 315501
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