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      Effect of grain size on the behavior of hydrogen/helium retention in tungsten: a cluster dynamics modeling

      , , , , ,
      Nuclear Fusion
      IOP Publishing

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          Efficient annealing of radiation damage near grain boundaries via interstitial emission.

          Although grain boundaries can serve as effective sinks for radiation-induced defects such as interstitials and vacancies, the atomistic mechanisms leading to this enhanced tolerance are still not well understood. With the use of three atomistic simulation methods, we investigated defect-grain boundary interaction mechanisms in copper from picosecond to microsecond time scales. We found that grain boundaries have a surprising "loading-unloading" effect. Upon irradiation, interstitials are loaded into the boundary, which then acts as a source, emitting interstitials to annihilate vacancies in the bulk. This unexpected recombination mechanism has a much lower energy barrier than conventional vacancy diffusion and is efficient for annihilating immobile vacancies in the nearby bulk, resulting in self-healing of the radiation-induced damage.
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            Multiscale modeling of crowdion and vacancy defects in body-centered-cubic transition metals

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              Accumulation and recovery of defects in ion-irradiated nanocrystalline gold

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                Author and article information

                Journal
                Nuclear Fusion
                Nucl. Fusion
                IOP Publishing
                0029-5515
                1741-4326
                August 01 2017
                August 01 2017
                June 28 2017
                : 57
                : 8
                : 086020
                Article
                10.1088/1741-4326/aa7640
                d891c0b5-6223-41ac-a097-3328b3e14b70
                © 2017

                http://iopscience.iop.org/info/page/text-and-data-mining

                http://iopscience.iop.org/page/copyright

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