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Lattice distortions and non-sluggish diffusion in BCC refractory high entropy alloys

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arxiv 2508.15558 v1 pith:A3PCUVFX submitted 2025-08-21 cond-mat.mtrl-sci

Lattice distortions and non-sluggish diffusion in BCC refractory high entropy alloys

classification cond-mat.mtrl-sci
keywords diffusionalloysdistortionslatticerheasapplicationsatomichigh-temperature
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Refractory high-entropy alloys (RHEAs) have emerged as promising candidates for extreme high-temperature applications, for example, in next-generation turbines and nuclear reactors. In such applications, atomic diffusion critically governs essential properties including creep resistance and microstructural stability. The present study systematically investigates impurity diffusion of Co, Mn, and Zn in single phase (BCC solid solution) HfTiZrNbTa and HfTiZrNbV RHEAs applying the radiotracer technique. A neutron total scattering technique is used to evaluate the pair distribution functions and element-specific lattice distortions in these alloys. \textit{Ab initio}-based calculations give access to lattice distortions and solubilities of the impurities under investigation, including the impact of short-range order. The diffusion results are discussed in relation to calculated substitutional and interstitial solution energies, local lattice distortions, and short-range order effects. Co diffusion is found to be dominated by the interstitial mechanism, exhibiting fast diffusion. These findings reveal important structure-property relationships between local atomic environments and diffusion kinetics in BCC RHEAs, providing critical insights for designing alloys with enhanced high-temperature performance through targeted control of impurity diffusion processes.

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