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Large-scale atomistic simulations of helium-3 bubble growth in complex palladium alloys

机译:复杂钯合金中He-3气泡生长的大规模原子模拟

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摘要

Palladium is an attractive material for hydrogen and hydrogen-isotope storage applications due to its properties of large storage density and high diffusion of lattice hydrogen. When considering tritium storage, the material's structural and mechanical integrity is threatened by both the embrittlement effect of hydrogen and the creation and evolution of additional crystal defects (e.g., dislocations, stacking faults) caused by the formation and growth of helium-3 bubbles. Using recently developed inter-atomic potentials for the palladium-silver-hydrogen system, we perform large-scale atomistic simulations to examine the defect-mediated mechanisms that govern helium bubble growth. Our simulations show the evolution of a distribution of material defects, and we compare the material behavior displayed with expectations from experiment and theory. We also present density functional theory calculations to characterize ideal tensile and shear strengths for these materials, which enable the understanding of how and why our developed potentials either meet or confound these expectations. Published by AIP Publishing.
机译:钯由于其大的存储密度和晶格氢的高扩散性而对于氢和氢同位素存储应用是有吸引力的材料。考虑considering的存储时,材料的结构和机械完整性会受到氢的脆化作用以及氦3气泡的形成和生长引起的其他晶体缺陷(例如位错,堆垛层错)的形成和演化的威胁。利用最近开发的钯-银-氢系统的原子间电势,我们进行了大规模的原子模拟,以研究控制氦气泡生长的缺陷介导机制。我们的模拟显示了材料缺陷分布的演变,我们将显示的材料行为与实验和理论的预期值进行了比较。我们还提供了密度泛函理论计算方法,以表征这些材料的理想拉伸强度和剪切强度,这使我们能够了解我们开发的潜力如何以及为何满足或混淆了这些期望。由AIP Publishing发布。

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