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DOE OSTI · 2584046

Compositionally-driven surface nanostructuring on refractory compositionally complex alloys under low energy helium bombardment

Abstract

Additive manufacturing enables user-defined control of the compositional complexity, opening new design spaces for complex concentrated alloys (CCAs). Refractory CCAs may offer enhanced performance in the divertor region of a fusion reactor environment where plasma-facing materials will be subject to high temperatures, low energy He and D particles, and 14 MeV neutrons. In this work, specimens with the nominal composition of NbTaMoTi, NbTaMo, NbTaTi, and NbTa were fabricated via directed energy deposition (DED) then bombarded with 40 eV He ions to a fluence of 2x10 26 m −2 at ∼ 1000 K. Post irradiation, the surface morphology and composition were examined with electron microscopy and x-ray photoelectron spectroscopy to offer information on the spatial distribution of surface nano-structuring. Sub-surface He bubbles driving the nano-structuring were examined with electron microscopy techniques. Analysis indicates the local composition directly influences the He bubble and tendril size, while the region with the highest complexity showed the shortest nano-structuring. Molecular Dynamics simulations complement the experimental results, showing comparable helium bubble growth and migration as a function of compositional complexity. This work demonstrates the compositional dependence of surface nanostructure formation of compositionally complex alloys, important for future design of complex plasma facing materials in fusion reactors.

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BibTeXRIS

Evans, Shane [Univ. of New Mexico, Albuquerque, NM (United States)], Hamil, Justin [Univ. of New Mexico, Albuquerque, NM (United States); Univ. of Michigan, Ann Arbor, MI (United States)] (ORCID:0000000208319716), Baldwin, Matthew J. [Univ. of California, San Diego, La Jolla, CA (United States)] (ORCID:0000000163352255), Nishijima, Daisuke [Univ. of California, San Diego, La Jolla, CA (United States)] (ORCID:0000000231194827), Patino, Marlene I. [Univ. of California, San Diego, La Jolla, CA (United States)] (ORCID:0000000226227110), McCarthy, Megan J. [Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)], Kustas, Andrew B. [Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)], Cusentino, Mary Alice [Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)], Lang, Eric [Univ. of New Mexico, Albuquerque, NM (United States)]. 2025-04-29. Compositionally-driven surface nanostructuring on refractory compositionally complex alloys under low energy helium bombardment. https://doi.org/10.1016/j.nme.2025.101946

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Tensile creep properties of NbTaTi and NbTaTiV refractory complex concentrated alloys

Refractory complex concentrated alloys (RCCAs) have emerged as promising candidates for high-temperature structural applications due to their high melting points and potential for exceptional strength, whereas their creep properties remain relatively underexplored. Here, we investigate the tensile creep behavior of NbTaTi and NbTaTiV in high vacuum to elucidate the influence of alloying on creep mechanisms. NbTaTiV exhibits higher creep resistance than NbTaTi, which is attributed to V-induced edge-dislocation-glide-controlled deformation. Microstructural analysis reveals the formation of Ti- and interstitial impurity-rich secondary phases during creep, which enhances the creep resistance without significant embrittlement. Stress exponents (∼3) and activation energies (∼those for vacancy diffusion) align with thermally activated dislocation glide-controlled creep. Despite NbTaTiV surpassing Ni-based superalloys in yield strength at elevated temperatures, its single-phase BCC structure limits creep resistance under engineering-relevant conditions, highlighting the necessity of deliberate secondary phase design to achieve competitive high-temperature performance.

Complex concentrated alloys