’Anti-sluggish’ Ti diffusion in HCP high-entropy alloys: Chemical complexity vs. lattice distortions

Sen, Sandipan; Zhang, Xi; Rogal, Lukasz; Wilde, Gerhard; Grabowski, Blazej; Divinski, Sergiy V.

Research article (journal) | Peer reviewed

Abstract

Self-diffusion of Ti in HCP HfTiZr and AlScHfTiZr multi-principal element alloys is measured using the radiotracer technique and applying the 44Ti isotope. In the temperature interval from 973 K to 1373 K, no systematic deviations from linear Arrhenius temperature dependencies are observed. Alloying equiatomic HfTiZr with Al and Sc enhances Ti diffusion rates and the effect becomes more pronounced with increasing Al content. The Ti diffusivities in the present multi-principal element alloys are found to exceed the values predicted by a simple geometric mean of the Ti diffusion coefficients in the pure metals by orders of magnitude, a phenomenon which we refer to as ‘anti-sluggish’ diffusion. Lattice distortions are speculated to dominate the relative enhancement of Ti diffusion in these HCP high-entropy alloys, inducing the ‘anti-sluggish’ behavior. The experimental findings are supported by ab initio-derived mean squared atomic displacements and potential energy fluctuations in these alloys.

Details about the publication

JournalScripta Materialia
Volume224
Article number115117
StatusPublished
Release year2023
Language in which the publication is writtenEnglish
DOI10.1016/j.scriptamat.2022.115117
Link to the full texthttps://api.elsevier.com/content/abstract/scopus_id/85141516830
KeywordsAlScHfTiZr; Diffusion; HCP crystalline lattice; High-entropy alloy; Sluggish diffusion

Authors from the University of Münster

Divinskyi, Sergii
Professorship of Materials Physics (Prof. Wilde)
Sen, Sandipan
Professorship of Materials Physics (Prof. Wilde)
Wilde, Gerhard
Professorship of Materials Physics (Prof. Wilde)