Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7978463 | Materials Science and Engineering: A | 2015 | 12 Pages |
Abstract
We study the mechanisms of deformation driven chemical mixing in a metallic nanocomposite model system. More specific, we investigate shear banding at the atomic scale in an amorphous CuZr/ crystalline Cu nanolaminate, deformed by microindentation. Three CuZr/Cu multilayer systems (100Â nm Cu/100Â nm CuZr, 50Â nm Cu/100Â nm CuZr, and 10Â nm Cu/100Â nm CuZr) are fabricated to study the effect of layer thickness on shear band formation and deformation induced alloying. The chemical and structural evolution at different strain levels are traced by atom probe tomography and transmission electron microscopy combined with nano-beam diffraction mapping. The initially pure crystalline Cu and amorphous CuZr layers chemically mix by cross-phase shear banding after reaching a critical layer thickness. The Cu inside the shear bands develops a high dislocation density and can locally undergo transition to an amorphous state when sheared and mixed. We conclude that the severe deformation in the shear bands in the amorphous layer squeeze Zr atoms into the Cu dislocation cores in the Cu layers (thickness <5Â nm), resulting in local chemical mixing.
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Wei Guo, Jiahao Yao, Eric A. Jägle, Pyuck-Pa Choi, Michael Herbig, Jochen M. Schneider, Dierk Raabe,