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Three-dimensional X-ray diffraction imaging of dislocations in polycrystalline metals under tensile loading.


ABSTRACT: The nucleation and propagation of dislocations is an ubiquitous process that accompanies the plastic deformation of materials. Consequently, following the first visualization of dislocations over 50 years ago with the advent of the first transmission electron microscopes, significant effort has been invested in tailoring material response through defect engineering and control. To accomplish this more effectively, the ability to identify and characterize defect structure and strain following external stimulus is vital. Here, using X-ray Bragg coherent diffraction imaging, we describe the first direct 3D X-ray imaging of the strain field surrounding a line defect within a grain of free-standing nanocrystalline material following tensile loading. By integrating the observed 3D structure into an atomistic model, we show that the measured strain field corresponds to a screw dislocation.

SUBMITTER: Cherukara MJ 

PROVIDER: S-EPMC6141512 | biostudies-literature | 2018 Sep

REPOSITORIES: biostudies-literature

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Three-dimensional X-ray diffraction imaging of dislocations in polycrystalline metals under tensile loading.

Cherukara Mathew J MJ   Pokharel Reeju R   O'Leary Timothy S TS   Baldwin J Kevin JK   Maxey Evan E   Cha Wonsuk W   Maser Jorg J   Harder Ross J RJ   Fensin Saryu J SJ   Sandberg Richard L RL  

Nature communications 20180917 1


The nucleation and propagation of dislocations is an ubiquitous process that accompanies the plastic deformation of materials. Consequently, following the first visualization of dislocations over 50 years ago with the advent of the first transmission electron microscopes, significant effort has been invested in tailoring material response through defect engineering and control. To accomplish this more effectively, the ability to identify and characterize defect structure and strain following ext  ...[more]

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