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@article{1909.02030v3,
author = {Zepeda-Ruiz, Luis A. and Stukowski, Alexander and Oppelstrup, Tomas and Bertin, Nicolas and Barton, Nathan R. and Freitas, Rodrigo and Bulatov, Vasily V.},
title = {Metal hardening in atomistic detail},
year = {2019},
month = {sep},
url = {http://arxiv.org/abs/1909.02030v3},
date = {2019-09-04T18:07:58Z},
eprint = {1909.02030v3},
eprintclass = {cond-mat.mtrl-sci},
eprinttype = {arxiv},
urldate = {2021-04-09T17:40:47.759973Z}
}
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author = {Misra, A.},
title = {7 - Mechanical behavior of metallic nanolaminates},
publisher = {Woodhead Publishing},
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url = {http://www.sciencedirect.com/science/article/pii/B9781855739338500075},
doi = {https://doi.org/10.1533/9781845691189.146},
abstract = {Publisher Summary
Nanolaminate materials, also referred to as “superlattices” or “multilayers”, represent a class of composite materials that are made up of alternating nanometer-scale layers of two different materials, where the individual layer thickness may vary from a few atomic layers to a few tens of nanometers. Nanolaminates have been the subject of significant recent research worldwide due to the novel mechanical and physical properties that emerge as the individual layer thickness is reduced to nanometer-scale. Nanolaminates may be metalmetal, metalintermetallic, metalceramic, ceramicceramic, or crystalline amorphous. This chapter focuses on the mechanical behavior of metallic nanolaminates. Besides the technological applications, metalmetal systems are studied extensively as model systems for fundamental research on the effects of nanometer length scales and the interface structures on the mechanical properties of nanolaminates. The chapter presents a brief description of the commonly used methods of synthesis, a brief overview of the strengthening mechanisms relevant to nanolaminates. It also presents experimental data on the strength as a function of bilayer period of the nanolaminates and the interpretation of these data in terms of the dislocation pile-up based HallPetch model. Single dislocation-based deformation models are developed to account for the increasing strength with decreasing layer thickness at length scales where the continuum HallPetch model is not applicable. The chapter describes atomistic modeling that predicts the limiting strength value for these nanolaminates and discusses the deformation behavior of nanolaminates subjected to large plastic strains to highlight the dislocation storage, work hardening, and texture evolution in these materials.},
booktitle = {Nanostructure Control of Materials},
editor = {Hannink, R. H. J. and Hill, A. J.},
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