Reconciling ultrahigh strength and hydrogen embrittlement resistance via discontinuous L12 precipitation in a high-entropy alloy

Authors
Song, Sang YoonJang, Tae JinLee, Chang-GiYang, Dae CheolSung, Min YoungLee, GunjickHan, Jung HunBaek, Ju-HyunSuh, Jin-YooZargaran, AlirezaSaksena, AparnaGault, BaptisteKo, Won-SeokKim, Se-HoSohn, Seok Su
Issue Date
2026-04
Publisher
Elsevier BV
Citation
Acta Materialia, v.307
Abstract
Achieving ultrahigh strength in advanced structural materials without compromising their resistance to hydrogen embrittlement (HE) remains a critical challenge. Here, we introduce a design strategy that exploits discontinuous L12 precipitation of strengthening particles also boosting HE resistance in a high-entropy alloy. The discontinuous reaction first produces serrated grain boundaries that induce crack deflection at multiple scales, effectively arresting intergranular crack propagation. The precipitates are ordered, coherent L12 nanorods with a high hydrogen trapping capability, as revealed by direct isotopically-labelled atom probe measurements and density functional theory calculations, significantly inhibiting hydrogen diffusion. This unique microstructural combination underpins a tensile strength of ∼1.7 GPa with a 33% superior HE resistance compared to a single-phase face-centered cubic reference alloy. Our strategy not only breaks the conventional trade-off between strength and HE, but also delivers higher gains in both tensile strength and HE resistance than conventional approaches, establishing discontinuous L12 precipitation as a versatile strategy for designing ultrahigh-strength HE-resistant alloys, with potential applications in hydrogen infrastructure and beyond.
Keywords
VACANCY FORMATION ENERGIES; REDUCING GRAIN-BOUNDARY; SOLUTE SEGREGATION; DISLOCATION LINE; TRAPPING SITES; ATOMIC-SCALE; CRACK-TIP; DIFFUSION; METALS; FE; Discontinuous L1 2 precipitation; Cryo-atom probe tomography; Density functional theory calculation; Hydrogen embrittlement; High-entropy alloy
ISSN
1359-6454
URI
https://pubs.kist.re.kr/handle/201004/154283
DOI
10.1016/j.actamat.2026.121972
Appears in Collections:
KIST Article > 2026
Export
RIS (EndNote)
XLS (Excel)
XML

qrcode

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

BROWSE