Investigation of Fe antisite disorder in FexGa3−x under high pressure.
POSTER
Abstract
To investigate the intertwining between disorder and electronic correlations, we have recently synthesized FeGa3 with the inclusion of controlled antisite Fe disorder as a compound named Fe1+δGa3 (δ = 0.16). The antisite Fe disorder is quantified by deviations in the occupancy number of Fe and Ga sites which changes the in-gap semiconducting and magnetic states of the pristine compound.
We have also investigated FeGa3 under the efect of compression and hydrostatic pressure. Our results show that pressure reduces the in-gap activation energy (Eg) of the impurity states while enhancing the magnetic ordering temperature (Tm). In addition, pressure increases sizeable the Sommerfeld coefficient γ. Because γ is a signature of the electronic density of the states population, our results might indicate that pressure acts as a control parameter to strengthen the electronic hybridization and to narrow the electronic bandwidth of the in-gap states.
Publication: [1] Yuta Hadano et al. Thermoelectric and magnetic properties of a narrow-gap semiconductor FeGa3. In: Journal of the Physical Society of Japan 78.1 (2008), p. 013702.<br>[2] M Wagner-Reetz, R Cardoso-Gil, and Yu Grin. In: Journal of electronic materials 43.6 (2014), pp. 18571864.<br>[3] V Ponnambalam and Donald T Morelli. In: Journal of Applied Physics 118.24 (2015), p. 245101.<br>[4] JC Alvarez-Quiceno et al. In: Journal of Physics: Condensed Matter 30.8 (2018), p. 085701.<br>[5] Yao Zhang et al. Transitions from a Kondo-like diamagnetic insulator into a modulated ferromagnetic metal in FeGa3-yGey. In: Proceedings of the National Academy of Sciences 115.13 (2018), pp. 32733278.<br>[6] J. Munevar et al. In: Phys. Rev. B 95 (12 Mar. 2017), p. 125138. doi: 10.1103/PhysRevB.95.125138. url: https: //link.aps.org/doi/10.1103/PhysRevB.95.125138.<br>[7] JC Alvarez-Quiceno et al. Doping quantum materials: Defects and impurities in Fe Ga 3. In: Physical Review B 102.9 (2020), p. 094110.<br>[8] Frank R Wagner et al. In: Inorganic chemistry 57.20 (2018), pp. 1290812919.<br>[9] C Kaufmann Ribeiro et al. Investigation of role of antisite disorder in pristine cage compound FeGa3 . In: arXiv preprint arXiv:2208.09064 (2022).
Presenters
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Cauê Kaufmann
University of São Paulo, Laboratory for Quantum Materials at the Institute of Physics at The University of Sao Paulo
Authors
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Cauê Kaufmann
University of São Paulo, Laboratory for Quantum Materials at the Institute of Physics at The University of Sao Paulo
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Aryella F Rabello
University of São Paulo
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Valentina Martelli
University of São Paulo
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Marcello B Silva Neto
Universidade Federal do Rio de Janeiro
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Ellen Fogh
Ecole Polytechnique Fédérale de Lausanne (EPFL)
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Henrik M Ronnow
Ecole Polytechnique Federale de Lausanne
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Daniel Cornejo
University of São Paulo
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Yuming Xiao
Argonne National Lab
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Nenad Markovic
Argonne National Laboratory
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J. Larrea Jiménez
University of São Paulo