Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles

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Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles. / Gutschka, Christian; Zauner, L.; Glechner, T. et al.
in: Acta materialia, Jahrgang 289.2025, Nr. 1 May, 04.03.2025.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

Vancouver

Gutschka C, Zauner L, Glechner T, Holec D, Riedl H. Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles. Acta materialia. 2025 Mär 4;289.2025(1 May). doi: 10.1016/j.actamat.2025.120857

Author

Gutschka, Christian ; Zauner, L. ; Glechner, T. et al. / Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles. in: Acta materialia. 2025 ; Jahrgang 289.2025, Nr. 1 May.

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@article{5aa7e7861b3e47d1a12496715617c50f,
title = "Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles",
abstract = "AlB2 structured transition metal diborides are a class of refractory ceramics standing out through their high-temperature stability and exceptional mechanical properties, encouraging research on their bulk and thin film forms. In Physical Vapor Deposition (PVD), scientific interest has focused on growing metastable solid solutions with Si to enhance oxidative properties and fracture characteristics. However, theoretical investigations of such ternary compounds are still rare. Therefore, this study explores the structural, energetical, and mechanical properties of the Ti-Si-B2, Zr-Si-B2, and Hf-Si-B2 structures, as well as their vacancy dynamics, with the help of Density Functional Theory (DFT). For all three systems, silicon prefers the boron sublattice and via structural analysis, metastable solubility limits of 24 at. %, 27 at. %, and 25 at. % of Si in Ti(Si,B)2, Zr(Si,B)2, and Hf(Si,B)2, could be established, respectively. An analysis of simulated XRD patterns, Radial Distribution Functions (RDFs), and Crystal Orbital Hamilton Populations (COHPs), attributed an observed destabilization of the AlB2-type symmetry to Si clustering. Simulated elastic properties revealed a decrease of the Young{\textquoteright}s moduli with increasing silicon contents, reproducing experimental values up to 15 at. % Si. The study discovered a structural instability of ternary, metastable AlB2-type compounds concerning metal vacancies.",
author = "Christian Gutschka and L. Zauner and T. Glechner and David Holec and H. Riedl",
year = "2025",
month = mar,
day = "4",
doi = "10.1016/j.actamat.2025.120857",
language = "English",
volume = "289.2025",
journal = "Acta materialia",
issn = "1359-6454",
publisher = "Acta Materialia Inc",
number = "1 May",

}

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TY - JOUR

T1 - Metastable AlB2 structured TM-Si-B2±z (TM = Ti, Zr, Hf) solid solutions from first-principles

AU - Gutschka, Christian

AU - Zauner, L.

AU - Glechner, T.

AU - Holec, David

AU - Riedl, H.

PY - 2025/3/4

Y1 - 2025/3/4

N2 - AlB2 structured transition metal diborides are a class of refractory ceramics standing out through their high-temperature stability and exceptional mechanical properties, encouraging research on their bulk and thin film forms. In Physical Vapor Deposition (PVD), scientific interest has focused on growing metastable solid solutions with Si to enhance oxidative properties and fracture characteristics. However, theoretical investigations of such ternary compounds are still rare. Therefore, this study explores the structural, energetical, and mechanical properties of the Ti-Si-B2, Zr-Si-B2, and Hf-Si-B2 structures, as well as their vacancy dynamics, with the help of Density Functional Theory (DFT). For all three systems, silicon prefers the boron sublattice and via structural analysis, metastable solubility limits of 24 at. %, 27 at. %, and 25 at. % of Si in Ti(Si,B)2, Zr(Si,B)2, and Hf(Si,B)2, could be established, respectively. An analysis of simulated XRD patterns, Radial Distribution Functions (RDFs), and Crystal Orbital Hamilton Populations (COHPs), attributed an observed destabilization of the AlB2-type symmetry to Si clustering. Simulated elastic properties revealed a decrease of the Young’s moduli with increasing silicon contents, reproducing experimental values up to 15 at. % Si. The study discovered a structural instability of ternary, metastable AlB2-type compounds concerning metal vacancies.

AB - AlB2 structured transition metal diborides are a class of refractory ceramics standing out through their high-temperature stability and exceptional mechanical properties, encouraging research on their bulk and thin film forms. In Physical Vapor Deposition (PVD), scientific interest has focused on growing metastable solid solutions with Si to enhance oxidative properties and fracture characteristics. However, theoretical investigations of such ternary compounds are still rare. Therefore, this study explores the structural, energetical, and mechanical properties of the Ti-Si-B2, Zr-Si-B2, and Hf-Si-B2 structures, as well as their vacancy dynamics, with the help of Density Functional Theory (DFT). For all three systems, silicon prefers the boron sublattice and via structural analysis, metastable solubility limits of 24 at. %, 27 at. %, and 25 at. % of Si in Ti(Si,B)2, Zr(Si,B)2, and Hf(Si,B)2, could be established, respectively. An analysis of simulated XRD patterns, Radial Distribution Functions (RDFs), and Crystal Orbital Hamilton Populations (COHPs), attributed an observed destabilization of the AlB2-type symmetry to Si clustering. Simulated elastic properties revealed a decrease of the Young’s moduli with increasing silicon contents, reproducing experimental values up to 15 at. % Si. The study discovered a structural instability of ternary, metastable AlB2-type compounds concerning metal vacancies.

U2 - 10.1016/j.actamat.2025.120857

DO - 10.1016/j.actamat.2025.120857

M3 - Article

VL - 289.2025

JO - Acta materialia

JF - Acta materialia

SN - 1359-6454

IS - 1 May

ER -