Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions

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Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions. / Bodlos, Rishi; Dengg, Thomas; Ruban, Andrei V. et al.
In: Physical review materials , Vol. 5, No. 4, 043601, 04.2021, p. 1-10.

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Bodlos R, Dengg T, Ruban AV, Dehghani M, Romaner L, Spitaler J. Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions. Physical review materials . 2021 Apr;5(4):1-10. 043601. doi: 10.1103/PhysRevMaterials.5.043601

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Bodlos, Rishi ; Dengg, Thomas ; Ruban, Andrei V. et al. / Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions. In: Physical review materials . 2021 ; Vol. 5, No. 4. pp. 1-10.

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@article{76f45744323d48709ebd7c77c8d78b6a,
title = "Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions",
abstract = "WTi is used as an adhesive layer in integrated circuit devices. The temperature dependent mechanical properties of WTi are still largely unexplored. In this paper we investigate WTi solid solutions with density functional theory calculations to determine the temperature and concentration dependent behavior of volume and coefficient of thermal expansion. The coefficient of thermal expansion is analyzed in terms of the bulk modulus, heat capacity, and Gr{\"u}neisen parameter. Furthermore, we gain insight into the bonding of the system via investigation of the electronic structure, phonon density of states, and analysis of the formation energy. Low Ti concentrations lead to strong W-Ti bonding, as manifested in additional high frequency peaks in the phonon density of states. As a consequence, deviations from Vegard's law are found at low Ti concentrations, with a minimum of the lattice constant at about 15 at. % Ti. The CTE as a function of Ti concentration shows a negative trend at low temperatures and Ti concentrations, which is related to a strong decrease of heat capacity. Finally we show that the Debye-Gr{\"u}neisen model yields results for WTi comparable to the quasiharmonic approach at a fraction of the computational cost.",
author = "Rishi Bodlos and Thomas Dengg and Ruban, {Andrei V.} and Mohammad Dehghani and Lorenz Romaner and J. Spitaler",
note = "Publisher Copyright: {\textcopyright} 2021 authors. Published by the American Physical Society. Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.",
year = "2021",
month = apr,
doi = "10.1103/PhysRevMaterials.5.043601",
language = "English",
volume = "5",
pages = "1--10",
journal = "Physical review materials ",
issn = "2475-9953",
publisher = "American Physical Society",
number = "4",

}

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TY - JOUR

T1 - Ab initio investigation of the atomic volume, thermal expansion, and formation energy of WTi solid solutions

AU - Bodlos, Rishi

AU - Dengg, Thomas

AU - Ruban, Andrei V.

AU - Dehghani, Mohammad

AU - Romaner, Lorenz

AU - Spitaler, J.

N1 - Publisher Copyright: © 2021 authors. Published by the American Physical Society. Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.

PY - 2021/4

Y1 - 2021/4

N2 - WTi is used as an adhesive layer in integrated circuit devices. The temperature dependent mechanical properties of WTi are still largely unexplored. In this paper we investigate WTi solid solutions with density functional theory calculations to determine the temperature and concentration dependent behavior of volume and coefficient of thermal expansion. The coefficient of thermal expansion is analyzed in terms of the bulk modulus, heat capacity, and Grüneisen parameter. Furthermore, we gain insight into the bonding of the system via investigation of the electronic structure, phonon density of states, and analysis of the formation energy. Low Ti concentrations lead to strong W-Ti bonding, as manifested in additional high frequency peaks in the phonon density of states. As a consequence, deviations from Vegard's law are found at low Ti concentrations, with a minimum of the lattice constant at about 15 at. % Ti. The CTE as a function of Ti concentration shows a negative trend at low temperatures and Ti concentrations, which is related to a strong decrease of heat capacity. Finally we show that the Debye-Grüneisen model yields results for WTi comparable to the quasiharmonic approach at a fraction of the computational cost.

AB - WTi is used as an adhesive layer in integrated circuit devices. The temperature dependent mechanical properties of WTi are still largely unexplored. In this paper we investigate WTi solid solutions with density functional theory calculations to determine the temperature and concentration dependent behavior of volume and coefficient of thermal expansion. The coefficient of thermal expansion is analyzed in terms of the bulk modulus, heat capacity, and Grüneisen parameter. Furthermore, we gain insight into the bonding of the system via investigation of the electronic structure, phonon density of states, and analysis of the formation energy. Low Ti concentrations lead to strong W-Ti bonding, as manifested in additional high frequency peaks in the phonon density of states. As a consequence, deviations from Vegard's law are found at low Ti concentrations, with a minimum of the lattice constant at about 15 at. % Ti. The CTE as a function of Ti concentration shows a negative trend at low temperatures and Ti concentrations, which is related to a strong decrease of heat capacity. Finally we show that the Debye-Grüneisen model yields results for WTi comparable to the quasiharmonic approach at a fraction of the computational cost.

UR - http://www.scopus.com/inward/record.url?scp=85104834294&partnerID=8YFLogxK

U2 - 10.1103/PhysRevMaterials.5.043601

DO - 10.1103/PhysRevMaterials.5.043601

M3 - Article

VL - 5

SP - 1

EP - 10

JO - Physical review materials

JF - Physical review materials

SN - 2475-9953

IS - 4

M1 - 043601

ER -