Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population

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Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population. / Glechner, T.; Mayrhofer, Paul Heinz; Holec, David et al.
in: Scientific reports (London : Nature Publishing Group), Jahrgang 8.2018, 17669, 05.12.2018.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

Harvard

Glechner, T, Mayrhofer, PH, Holec, D, Fritze, S, Lewin, E, Paneta, V, Primetzhofer, D, Kolozsvári, S & Riedl, H 2018, 'Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population', Scientific reports (London : Nature Publishing Group), Jg. 8.2018, 17669. https://doi.org/10.1038/s41598-018-35870-x

APA

Glechner, T., Mayrhofer, P. H., Holec, D., Fritze, S., Lewin, E., Paneta, V., Primetzhofer, D., Kolozsvári, S., & Riedl, H. (2018). Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population. Scientific reports (London : Nature Publishing Group), 8.2018, Artikel 17669. https://doi.org/10.1038/s41598-018-35870-x

Vancouver

Glechner T, Mayrhofer PH, Holec D, Fritze S, Lewin E, Paneta V et al. Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population. Scientific reports (London : Nature Publishing Group). 2018 Dez 5;8.2018:17669. doi: 10.1038/s41598-018-35870-x

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@article{8e393412e5d64ec68543d27037cc6afc,
title = "Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population",
abstract = "Tailoring mechanical properties of transition metal carbides by substituting carbon with nitrogen atoms is a highly interesting approach, as thereby the bonding state changes towards a more metallic like character and thus ductility can be increased. Based on ab initio calculations we could prove experimentally, that up to a nitrogen content of about 68% on the non-metallic sublattice, Ta-C-N crystals prevail a face centered cubic structure for sputter deposited thin films. The cubic structure is partly stabilized by non-metallic as well as Ta vacancies – the latter are decisive for nitrogen rich compositions. With increasing nitrogen content, the originally super-hard fcc-TaC0.71 thin films soften from 40 GPa to 26 GPa for TaC0.33N0.67, accompanied by a decrease of the indentation modulus. With increasing nitrogen on the non-metallic sublattice (hence, decreasing C) the damage tolerance of Ta-C based coatings increases, when characterized after the Pugh and Pettifor criteria. Consequently, varying the non-metallic sublattice population allows for an effective tuning and designing of intrinsic coating properties.",
author = "T. Glechner and Mayrhofer, {Paul Heinz} and David Holec and S. Fritze and E. Lewin and V. Paneta and D. Primetzhofer and Szil{\'a}rd Kolozsv{\'a}ri and Helmut Riedl",
year = "2018",
month = dec,
day = "5",
doi = "10.1038/s41598-018-35870-x",
language = "English",
volume = "8.2018",
journal = "Scientific reports (London : Nature Publishing Group)",
issn = "2045-2322",
publisher = "Nature Publishing Group",

}

RIS (suitable for import to EndNote) - Download

TY - JOUR

T1 - Tuning structure and mechanical properties of Ta-C coatings by N-alloying and vacancy population

AU - Glechner, T.

AU - Mayrhofer, Paul Heinz

AU - Holec, David

AU - Fritze, S.

AU - Lewin, E.

AU - Paneta, V.

AU - Primetzhofer, D.

AU - Kolozsvári, Szilárd

AU - Riedl, Helmut

PY - 2018/12/5

Y1 - 2018/12/5

N2 - Tailoring mechanical properties of transition metal carbides by substituting carbon with nitrogen atoms is a highly interesting approach, as thereby the bonding state changes towards a more metallic like character and thus ductility can be increased. Based on ab initio calculations we could prove experimentally, that up to a nitrogen content of about 68% on the non-metallic sublattice, Ta-C-N crystals prevail a face centered cubic structure for sputter deposited thin films. The cubic structure is partly stabilized by non-metallic as well as Ta vacancies – the latter are decisive for nitrogen rich compositions. With increasing nitrogen content, the originally super-hard fcc-TaC0.71 thin films soften from 40 GPa to 26 GPa for TaC0.33N0.67, accompanied by a decrease of the indentation modulus. With increasing nitrogen on the non-metallic sublattice (hence, decreasing C) the damage tolerance of Ta-C based coatings increases, when characterized after the Pugh and Pettifor criteria. Consequently, varying the non-metallic sublattice population allows for an effective tuning and designing of intrinsic coating properties.

AB - Tailoring mechanical properties of transition metal carbides by substituting carbon with nitrogen atoms is a highly interesting approach, as thereby the bonding state changes towards a more metallic like character and thus ductility can be increased. Based on ab initio calculations we could prove experimentally, that up to a nitrogen content of about 68% on the non-metallic sublattice, Ta-C-N crystals prevail a face centered cubic structure for sputter deposited thin films. The cubic structure is partly stabilized by non-metallic as well as Ta vacancies – the latter are decisive for nitrogen rich compositions. With increasing nitrogen content, the originally super-hard fcc-TaC0.71 thin films soften from 40 GPa to 26 GPa for TaC0.33N0.67, accompanied by a decrease of the indentation modulus. With increasing nitrogen on the non-metallic sublattice (hence, decreasing C) the damage tolerance of Ta-C based coatings increases, when characterized after the Pugh and Pettifor criteria. Consequently, varying the non-metallic sublattice population allows for an effective tuning and designing of intrinsic coating properties.

U2 - 10.1038/s41598-018-35870-x

DO - 10.1038/s41598-018-35870-x

M3 - Article

VL - 8.2018

JO - Scientific reports (London : Nature Publishing Group)

JF - Scientific reports (London : Nature Publishing Group)

SN - 2045-2322

M1 - 17669

ER -