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Dive into the research topics where Laurent Karim Béland is active.

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Featured researches published by Laurent Karim Béland.


Nature Communications | 2015

Influence of chemical disorder on energy dissipation and defect evolution in concentrated solid solution alloys

Yanwen Zhang; G. Malcolm Stocks; Ke Jin; Chenyang Lu; Hongbin Bei; Brian C. Sales; Lumin Wang; Laurent Karim Béland; Roger E. Stoller; German Samolyuk; Magdalena Serrano De Caro; A. Caro; William J. Weber

A grand challenge in materials research is to understand complex electronic correlation and non-equilibrium atomic interactions, and how such intrinsic properties and dynamic processes affect energy transfer and defect evolution in irradiated materials. Here we report that chemical disorder, with an increasing number of principal elements and/or altered concentrations of specific elements, in single-phase concentrated solid solution alloys can lead to substantial reduction in electron mean free path and orders of magnitude decrease in electrical and thermal conductivity. The subsequently slow energy dissipation affects defect dynamics at the early stages, and consequentially may result in less deleterious defects. Suppressed damage accumulation with increasing chemical disorder from pure nickel to binary and to more complex quaternary solid solutions is observed. Understanding and controlling energy dissipation and defect dynamics by altering alloy complexity may pave the way for new design principles of radiation-tolerant structural alloys for energy applications.


Scientific Reports | 2016

Direct Observation of Defect Range and Evolution in Ion-Irradiated Single Crystalline Ni and Ni Binary Alloys.

Chenyang Lu; Ke Jin; Laurent Karim Béland; Feifei Zhang; Taini Yang; Liang Qiao; Yanwen Zhang; Hongbin Bei; Hans M. Christen; Roger E. Stoller; Lumin Wang

Energetic ions have been widely used to evaluate the irradiation tolerance of structural materials for nuclear power applications and to modify material properties. It is important to understand the defect production, annihilation and migration mechanisms during and after collision cascades. In this study, single crystalline pure nickel metal and single-phase concentrated solid solution alloys of 50%Ni50%Co (NiCo) and 50%Ni50%Fe (NiFe) without apparent preexisting defect sinks were employed to study defect dynamics under ion irradiation. Both cross-sectional transmission electron microscopy characterization (TEM) and Rutherford backscattering spectrometry channeling (RBS-C) spectra show that the range of radiation-induced defect clusters far exceed the theoretically predicted depth in all materials after high-dose irradiation. Defects in nickel migrate faster than in NiCo and NiFe. Both vacancy-type stacking fault tetrahedra (SFT) and interstitial loops coexist in the same region, which is consistent with molecular dynamics simulations. Kinetic activation relaxation technique (k-ART) simulations for nickel showed that small vacancy clusters, such as di-vacancies and tri-vacancies, created by collision cascades are highly mobile, even at room temperature. The slower migration of defects in the alloy along with more localized energy dissipation of the displacement cascade may lead to enhanced radiation tolerance.


Journal of Applied Physics | 2016

Features of primary damage by high energy displacement cascades in concentrated Ni-based alloys

Laurent Karim Béland; Chenyang Lu; Yuri Osetskiy; German Samolyuk; A. Caro; Lumin Wang; Roger E. Stoller

Alloying of Ni with Fe or Co has been shown to reduce primary damage production under ion irradiation. Similar results have been obtained from classical molecular dynamics simulations of 1, 10, 20, and 40u2009keV collision cascades in Ni, NiFe, and NiCo. In all cases, a mix of imperfect stacking fault tetrahedra, faulted loops with a 1/3⟨111⟩ Burgers vector, and glissile interstitial loops with a 1/2⟨110⟩ Burgers vector were formed, along with small sessile point defect complexes and clusters. Primary damage reduction occurs by three mechanisms. First, Ni-Co, Ni-Fe, Co-Co, and Fe-Fe short-distance repulsive interactions are stiffer than Ni-Ni interactions, which lead to a decrease in damage formation during the transition from the supersonic ballistic regime to the sonic regime. This largely controls final defect production. Second, alloying decreases thermal conductivity, leading to a longer thermal spike lifetime. The associated annealing reduces final damage production. These two mechanisms are especially ...


Journal of Materials Research | 2016

Influence of chemical disorder on energy dissipation and defect evolution in advanced alloys

Yanwen Zhang; Ke Jin; Haizhou Xue; Chenyang Lu; Raina Olsen; Laurent Karim Béland; Mohammad W. Ullah; Shijun Zhao; Hongbin Bei; Dilpuneet S. Aidhy; German Samolyuk; Lumin Wang; Magdalena Serrano De Caro; A. Caro; G. Malcolm Stocks; Ben C Larson; I.M. Robertson; Alfredo A. Correa; William J. Weber


Journal of Alloys and Compounds | 2015

Lattice thermal conductivity of multi-component alloys

Magdalena Serrano De Caro; Laurent Karim Béland; German Samolyuk; Roger E. Stoller; A. Caro


Acta Materialia | 2016

Specific features of defect and mass transport in concentrated fcc alloys

Yuri N. Osetsky; Laurent Karim Béland; Roger E. Stoller


Journal of Alloys and Compounds | 2016

Differences in the accumulation of ion-beam damage in Ni and NiFe explained by atomistic simulations

Laurent Karim Béland; German Samolyuk; Roger E. Stoller


Journal of Alloys and Compounds | 2015

Interstitial loop transformations in FeCr

Laurent Karim Béland; Yuri N. Osetsky; Roger E. Stoller; Haixuan Xu


Computational Materials Science | 2015

Following atomistic kinetics on experimental timescales with the kinetic Activation–Relaxation Technique

Normand Mousseau; Laurent Karim Béland; Peter Brommer; Fedwa El-Mellouhi; Jean-François Joly; Gawonou Kokou N’Tsouaglo; Oscar A. Restrepo; Mickaël Trochet


Acta Materialia | 2016

The effect of alloying nickel with iron on the supersonic ballistic stage of high energy displacement cascades

Laurent Karim Béland; Yuri N. Osetsky; Roger E. Stoller

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Roger E. Stoller

Oak Ridge National Laboratory

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Chenyang Lu

University of Michigan

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German Samolyuk

Oak Ridge National Laboratory

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Yuri N. Osetsky

Oak Ridge National Laboratory

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A. Caro

Los Alamos National Laboratory

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Hongbin Bei

Oak Ridge National Laboratory

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Ke Jin

Oak Ridge National Laboratory

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Lumin Wang

University of Michigan

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Haixuan Xu

University of Tennessee

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