Additively manufactured high-entropy alloy mimics the pressure-induced structural transition of iron
Abstract
We report a pressure-induced structural phase transformation in an additively manufactured (AM) AlCrFe2Ni2 high-entropy alloy. High laser scan-speed processing during AM has been shown to strongly suppress FCC formation, yielding BCC/B2-dominant microstructures. Synchrotron x-ray diffraction reveals a reversible BCC/B2 → HCP transition near ∼13 GPa that mirrors the α-Fe → ɛ-Fe transformation in elemental iron. Notably, this iron-like phase change occurs despite substantial chemical disorder and multi-element site occupancy, demonstrating that the BCC lattice instability leading to close-packed polymorphs can persist in a highly disordered matrix. At ambient pressure, AlCrFe2Ni2 exhibits robust ferromagnetic behavior associated with the BCC/B2 phase. The observation of an α-Fe–like polymorphic pathway in a chemically complex alloy shows that classic cubic-to-close-packed transformation physics is not extinguished by compositional complexity. As a result, AlCrFe2Ni2 emerges as a model system for exploring pressure-driven polymorphism and potential magneto-structural coupling in high-entropy alloys.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Raimundas Sereika
Shengbiao Zhang
Wuxian Yang
Aerospace and Mechanical Engineering, University of Southern California
Wen Chen
Department of Immunology, St. Jude Children’s Research Hospital
Yogesh K. Vohra