Bulletin of the American Physical Society
23rd Biennial Conference of the APS Topical Group on Shock Compression of Condensed Matter
Volume 68, Number 8
Monday–Friday, June 19–23, 2023; Chicago, Illinois
Session 1H: Material Properties, Phase Transition, and Kinetics II
2:15 PM–3:27 PM,
Sunday, June 18, 2023
Sheraton Grand Chicago Riverwalk
Room: Sheraton Chicago 4-7
Chair: Thomas Mattsson, Sandia National Laboratories
Abstract: 1H.00005 : High-pressure crystal structure investigation of the cage compound Fe1+δGa3*
3:03 PM–3:15 PM
Presenter:
Aryella F Rabello
(University of São Paulo)
Authors:
Aryella F Rabello
(University of São Paulo)
Cauê Kaufmann
(Laboratory for Quantum Materials at the Institute of Physics at The University of Sao Paulo)
Valentina Martelli
(University of São Paulo)
Nenad Velisavljevic
(Lawrence Livermore National Laboratory and Argonne National Laboratory)
Yuming Xiao
(Argonne National Lab)
Dmitry Popov
(HPCAT, X-ray Science Division, Argonne National Laboratory)
J. Larrea Jiménez
(University of São Paulo)
In order to investigate the role of disorder, we synthesize FeGa3 with a delicate inclusion of Fe-antisite disorder, named as Fe1+δGa3 (δ ~ 0.16). Our initial electrical transport and magnetization studies under pressure (up to 2 GPa) reveals a non-canonical phase diagram for semiconducting electronic correlated material: Δe decreases while Tm increases with pressure. These findings call for X-ray diffraction (XRD) experiments under high-pressure to demystify whether this unusual phase diagram is due either to Anderson localization or to structural phase transition.
In this work, we present XRD results of Fe1+δGa3 up to 38 GPa and at 294 K, performed at HPCAT (Sector 16), Advanced Photon Source (APS), Argonne National Laboratory. Preliminary XRD data analysis distinguishes two different pressure ranges separated by critical pressure Pc ~ 18 GPa. In particular at Pc, the average volume grain size reduces ~ 30%, the microstrain increases ~ 50% drastically, accompanied by strong broadening in the XRD pattern. We infer that the system undergoes a structural transition from crystalline to amorphous phase around Pc.
Our findings are of extremely relevance to understand an intriguing metalization reported for the pristine single crystal FeGa3 at very high pressure [3].
*J. L. J FAPESP-Young Investigator Grant 2018/08845-3 and CNPq 31005/2021-6. V.M acknowledge FAPESP-Young Investigator 2018/19420-3. A.F.R. acknowledge to FAPESP Grant 2020/01377-4. We acknowledge M.C.A. Fantini for the access to the LCr-IFUSP, D.R. Cornejo from the Institute of Physics of the University of São Paulo and we acknowledge the Advanced Photon Source (APS), Argonne National Laboratory.
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