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In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation

Load-displacement curves measured during indentation experiments on thin films depend on non-homogeneous intrinsic film microstructure and residual stress gradients as well as on their changes during indenter penetration into the material. To date, microstructural changes and local stress concentrat...

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Autores principales: Zeilinger, Angelika, Todt, Juraj, Krywka, Christina, Müller, Martin, Ecker, Werner, Sartory, Bernhard, Meindlhumer, Michael, Stefenelli, Mario, Daniel, Rostislav, Mitterer, Christian, Keckes, Jozef
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4780078/
https://www.ncbi.nlm.nih.gov/pubmed/26947558
http://dx.doi.org/10.1038/srep22670
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author Zeilinger, Angelika
Todt, Juraj
Krywka, Christina
Müller, Martin
Ecker, Werner
Sartory, Bernhard
Meindlhumer, Michael
Stefenelli, Mario
Daniel, Rostislav
Mitterer, Christian
Keckes, Jozef
author_facet Zeilinger, Angelika
Todt, Juraj
Krywka, Christina
Müller, Martin
Ecker, Werner
Sartory, Bernhard
Meindlhumer, Michael
Stefenelli, Mario
Daniel, Rostislav
Mitterer, Christian
Keckes, Jozef
author_sort Zeilinger, Angelika
collection PubMed
description Load-displacement curves measured during indentation experiments on thin films depend on non-homogeneous intrinsic film microstructure and residual stress gradients as well as on their changes during indenter penetration into the material. To date, microstructural changes and local stress concentrations resulting in plastic deformation and fracture were quantified exclusively using numerical models which suffer from poor knowledge of size dependent material properties and the unknown intrinsic gradients. Here, we report the first in-situ characterization of microstructural changes and multi-axial stress distributions in a wedge-indented 9 μm thick nanocrystalline TiN film volume performed using synchrotron cross-sectional X-ray nanodiffraction. During the indentation, needle-like TiN crystallites are tilted up to 15 degrees away from the indenter axis in the imprint area and strongly anisotropic diffraction peak broadening indicates strain variation within the X-ray nanoprobe caused by gradients of giant compressive stresses. The morphology of the multiaxial stress distributions with local concentrations up to −16.5 GPa correlate well with the observed fracture modes. The crack growth is influenced decisively by the film microstructure, especially by the micro- and nano-scopic interfaces. This novel experimental approach offers the capability to interpret indentation response and indenter imprint morphology of small graded nanostructured features.
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spelling pubmed-47800782016-03-09 In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation Zeilinger, Angelika Todt, Juraj Krywka, Christina Müller, Martin Ecker, Werner Sartory, Bernhard Meindlhumer, Michael Stefenelli, Mario Daniel, Rostislav Mitterer, Christian Keckes, Jozef Sci Rep Article Load-displacement curves measured during indentation experiments on thin films depend on non-homogeneous intrinsic film microstructure and residual stress gradients as well as on their changes during indenter penetration into the material. To date, microstructural changes and local stress concentrations resulting in plastic deformation and fracture were quantified exclusively using numerical models which suffer from poor knowledge of size dependent material properties and the unknown intrinsic gradients. Here, we report the first in-situ characterization of microstructural changes and multi-axial stress distributions in a wedge-indented 9 μm thick nanocrystalline TiN film volume performed using synchrotron cross-sectional X-ray nanodiffraction. During the indentation, needle-like TiN crystallites are tilted up to 15 degrees away from the indenter axis in the imprint area and strongly anisotropic diffraction peak broadening indicates strain variation within the X-ray nanoprobe caused by gradients of giant compressive stresses. The morphology of the multiaxial stress distributions with local concentrations up to −16.5 GPa correlate well with the observed fracture modes. The crack growth is influenced decisively by the film microstructure, especially by the micro- and nano-scopic interfaces. This novel experimental approach offers the capability to interpret indentation response and indenter imprint morphology of small graded nanostructured features. Nature Publishing Group 2016-03-07 /pmc/articles/PMC4780078/ /pubmed/26947558 http://dx.doi.org/10.1038/srep22670 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Zeilinger, Angelika
Todt, Juraj
Krywka, Christina
Müller, Martin
Ecker, Werner
Sartory, Bernhard
Meindlhumer, Michael
Stefenelli, Mario
Daniel, Rostislav
Mitterer, Christian
Keckes, Jozef
In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title_full In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title_fullStr In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title_full_unstemmed In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title_short In-situ Observation of Cross-Sectional Microstructural Changes and Stress Distributions in Fracturing TiN Thin Film during Nanoindentation
title_sort in-situ observation of cross-sectional microstructural changes and stress distributions in fracturing tin thin film during nanoindentation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4780078/
https://www.ncbi.nlm.nih.gov/pubmed/26947558
http://dx.doi.org/10.1038/srep22670
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