In-situ atomic-scale observation of irradiation-induced void formation
The formation of voids in an irradiated material significantly degrades its physical and mechanical properties. Void nucleation and growth involve discrete atomic-scale processes that, unfortunately, are not yet well understood due to the lack of direct experimental examination. Here we report an in...
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Published in | Nature communications Vol. 4; no. 1; p. 2288 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
London
Nature Publishing Group UK
05.08.2013
Nature Publishing Group |
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Abstract | The formation of voids in an irradiated material significantly degrades its physical and mechanical properties. Void nucleation and growth involve discrete atomic-scale processes that, unfortunately, are not yet well understood due to the lack of direct experimental examination. Here we report an
in-situ
atomic-scale observation of the nucleation and growth of voids in hexagonal close-packed magnesium under electron irradiation. The voids are found to first grow into a plate-like shape, followed by a gradual transition to a nearly equiaxial geometry. Using atomistic simulations, we show that the initial growth in length is controlled by slow nucleation kinetics of vacancy layers on basal facets and anisotropic vacancy diffusivity. The subsequent thickness growth is driven by thermodynamics to reduce surface energy. These experiments represent unprecedented resolution and characterization of void nucleation and growth under irradiation, and might help with understanding the irradiation damage of other hexagonal close-packed materials.
The irradiation of crystalline materials is known to create various types of lattice defects, which can degrade mechanical performance. Here, Xu
et al.
observe the
in-situ
nucleation and growth of atomic-scale voids in magnesium during electron irradiation. |
---|---|
AbstractList | The formation of voids in an irradiated material significantly degrades its physical and mechanical properties. Void nucleation and growth involve discrete atomic-scale processes that, unfortunately, are not yet well understood due to the lack of direct experimental examination. Here we report an in-situ atomic-scale observation of the nucleation and growth of voids in hexagonal close-packed magnesium under electron irradiation. The voids are found to first grow into a plate-like shape, followed by a gradual transition to a nearly equiaxial geometry. Using atomistic simulations, we show that the initial growth in length is controlled by slow nucleation kinetics of vacancy layers on basal facets and anisotropic vacancy diffusivity. The subsequent thickness growth is driven by thermodynamics to reduce surface energy. These experiments represent unprecedented resolution and characterization of void nucleation and growth under irradiation, and might help with understanding the irradiation damage of other hexagonal close-packed materials. The formation of voids in an irradiated material significantly degrades its physical and mechanical properties. Void nucleation and growth involve discrete atomic-scale processes that, unfortunately, are not yet well understood due to the lack of direct experimental examination. Here we report an in-situ atomic-scale observation of the nucleation and growth of voids in hexagonal close-packed magnesium under electron irradiation. The voids are found to first grow into a plate-like shape, followed by a gradual transition to a nearly equiaxial geometry. Using atomistic simulations, we show that the initial growth in length is controlled by slow nucleation kinetics of vacancy layers on basal facets and anisotropic vacancy diffusivity. The subsequent thickness growth is driven by thermodynamics to reduce surface energy. These experiments represent unprecedented resolution and characterization of void nucleation and growth under irradiation, and might help with understanding the irradiation damage of other hexagonal close-packed materials. The irradiation of crystalline materials is known to create various types of lattice defects, which can degrade mechanical performance. Here, Xu et al. observe the in-situ nucleation and growth of atomic-scale voids in magnesium during electron irradiation. |
ArticleNumber | 2288 |
Author | Zhang, Yongfeng Jian, Weiwei Zhu, Yuntian Xu, Weizong Mathaudhu, Suveen N. Cheng, Guangming Millett, Paul C. Koch, Carl C. |
Author_xml | – sequence: 1 givenname: Weizong surname: Xu fullname: Xu, Weizong organization: Department of Materials Science and Engineering, North Carolina State University – sequence: 2 givenname: Yongfeng surname: Zhang fullname: Zhang, Yongfeng organization: Fuels Modeling and Simulations, Idaho National Laboratory – sequence: 3 givenname: Guangming surname: Cheng fullname: Cheng, Guangming organization: Department of Materials Science and Engineering, North Carolina State University – sequence: 4 givenname: Weiwei surname: Jian fullname: Jian, Weiwei organization: Department of Materials Science and Engineering, North Carolina State University – sequence: 5 givenname: Paul C. surname: Millett fullname: Millett, Paul C. organization: Department of Mechanical Engineering, University of Arkansas – sequence: 6 givenname: Carl C. surname: Koch fullname: Koch, Carl C. organization: Department of Materials Science and Engineering, North Carolina State University – sequence: 7 givenname: Suveen N. surname: Mathaudhu fullname: Mathaudhu, Suveen N. organization: Materials Science Division, US Army Research Office, Research Triangle Park – sequence: 8 givenname: Yuntian surname: Zhu fullname: Zhu, Yuntian email: ytzhu@ncsu.edu organization: Department of Materials Science and Engineering, North Carolina State University |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/23912894$$D View this record in MEDLINE/PubMed |
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Title | In-situ atomic-scale observation of irradiation-induced void formation |
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