High Entropy Alloy under Shock Compression: Optical-Pump X-Ray-Probe
Hsin Hui Huang, Meguya Ryu, Shuji Kamegaki, Dominyka Stonyte, Tadas Malinauskas, Yoshiaki Nishijima, Rosalie Hocking, Nguyen Hoai An Le, Tomas Katkus, Haoran Mu, Soon Hock Ng, Samuel Pinches, Andrew S.M. Ang, Vygantas Mizeikis, Nadia Zatsepin, Kohei Miyanishi, Toshinori Yabuuchi

TL;DR
This study investigates the behavior of high entropy alloys under shock compression using laser-driven experiments and time-resolved X-ray diffraction, revealing transient phases and shock pressures, advancing understanding of their extreme dynamic response.
Contribution
It provides the first experimental observation of transient phases and shock response in high entropy alloys under dynamic loading conditions.
Findings
Transient phase with 5.1% lattice compression observed
Shock pressure estimated at 55 GPa from Hugoniot analysis
Maximum free surface velocity recorded at ~5 km/s
Abstract
High entropy alloys (HEAs) are multi-principal-element alloys designed for tailorable mechanical performance and have been attracting significant engineering interest, yet their fundamental behaviour under extreme dynamic conditions, such as shock loading, remains unexplored. Here, we report laser-shock experiments on two different types of 1-micrometers-thick HEA microfilms, CuPdAgPtAu and CrFeCoNiCuMo, on 25-micrometers-thick black-Kapton ablator driven by a high intensity laser pulse (532 nm, 5 ns, 16 J, 0.5-mm diameter focal spot) and probed by an X-ray free electron laser (XFEL) pulse (12 keV, 7 fs). Time-resolved X-ray diffraction (XRD) shows the formation of a transient phase with a lattice compression up to 5.1% of the CuPdAgPtAu HEA along the (111) plane; this transient compressed phase existed for 0.3 ns. The impedance matching Hugoniot analysis estimated a shock pressure of…
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Taxonomy
TopicsHigh-pressure geophysics and materials · High Entropy Alloys Studies · Laser-Plasma Interactions and Diagnostics
