| Literature DB >> 12618848 |
Vesselin Yamakov1, Dieter Wolf, Simon R Phillpot, Amiya K Mukherjee, Herbert Gleiter.
Abstract
The mechanical behaviour of nanocrystalline materials (that is, polycrystals with a grain size of less than 100 nm) remains controversial. Although it is commonly accepted that the intrinsic deformation behaviour of these materials arises from the interplay between dislocation and grain-boundary processes, little is known about the specific deformation mechanisms. Here we use large-scale molecular-dynamics simulations to elucidate this intricate interplay during room-temperature plastic deformation of model nanocrystalline Al microstructures. We demonstrate that, in contrast to coarse-grained Al, mechanical twinning may play an important role in the deformation behaviour of nanocrystalline Al. Our results illustrate that this type of simulation has now advanced to a level where it provides a powerful new tool for elucidating and quantifying--in a degree of detail not possible experimentally--the atomic-level mechanisms controlling the complex dislocation and grain-boundary processes in heavily deformed materials with a submicrometre grain size.Entities:
Year: 2002 PMID: 12618848 DOI: 10.1038/nmat700
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841