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Lattice dynamic stability and electronic structures of ternary hydrides La1 xYxH3 via first-principles cluster expansion

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dc.contributor.author Tsuppayakorn-aek, P.
dc.contributor.author Sukmas, W.
dc.contributor.author Pluengphon, P.
dc.contributor.author Inceesungvorn, B.
dc.contributor.author Phansuke, P.
dc.contributor.author Kaewtubtim, P.
dc.contributor.author Ahuja, R.
dc.contributor.author Bovornratanaraks, T.
dc.contributor.author Luo, W.
dc.date.accessioned 2022-10-29T19:23:48Z
dc.date.available 2022-10-29T19:23:48Z
dc.date.issued 2022-10-30
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/4134
dc.description.abstract Lanthanum hydride compounds LaH3 become stabilized by yttrium substitution under the influence of moderate pressure. Novel materials with a wide range of changes in the structural properties as a function of hydrogen are investigated by means of the first-principles cluster expansion technique. Herein, the new compounds La1 xYxH3, where 0 # x # 1, are determined to adopt tetragonal structures under high-pressure with the compositions La0.8Y0.2H3, La0.75Y0.25H3, and La0.5Y0.5H3. The corresponding thermodynamic and dynamical stabilities of the predicted phases are confirmed by a series of calculations including, for example, phonon dispersion, electronic band structure, and other electronic characteristics. According to the band characteristics, all hydrides except that of I41/amd symmetry are semiconductors. The tetragonal La0.5Y0.5H3 phase is found to become semi-metallic, as confirmed by adopting the modified Becke–Johnson exchange potential. The physical origins of the semiconductor properties in these stable hydrides are discussed in detail. Our findings provide a deeper insight into this class of rare-earth ternary hydrides. en_US
dc.language.iso en_US en_US
dc.subject Lattice dynamic stability en_US
dc.subject ternary hydrides en_US
dc.subject La1 xYxH3 en_US
dc.subject cluster expansion en_US
dc.title Lattice dynamic stability and electronic structures of ternary hydrides La1 xYxH3 via first-principles cluster expansion en_US
dc.type Article en_US


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