Fracture toughness trends of modulus-matched TiN/(Cr, Al)N thin film superlattices. (1st January 2021)
- Record Type:
- Journal Article
- Title:
- Fracture toughness trends of modulus-matched TiN/(Cr, Al)N thin film superlattices. (1st January 2021)
- Main Title:
- Fracture toughness trends of modulus-matched TiN/(Cr, Al)N thin film superlattices
- Authors:
- Buchinger, J.
Wagner, A.
Chen, Z.
Zhang, Z.L.
Holec, D.
Mayrhofer, P.H.
Bartosik, M. - Abstract:
- Abstract: Through superlattice (SL) architectures, the hardness as well as the fracture toughness of ceramic thin films can be enhanced. The hardness-related SL effect is reasonably well understood, however, the mechanisms driving the toughness-enhancing effect are still partially unexplored. To isolate the effect of the lattice mismatch from the elastic moduli mismatch on the toughness-related properties, we designed TiN/Cr0.37 Al0.63 N superlattices, in which the involved layers have effectively identical elastic moduli, but sizeably different lattice parameters. Micromechanical bending tests show an enhanced fracture toughness KIC of the SLs (2.5±0.1 MPa√m) compared with monolithic TiN (2.0±0.1 MPa√m) and Cr0.37 Al0.63 N (1.3±0.1 MPa√m) with only a weak bilayer period (Λ) dependence. Superimposing an analytical model based on continuum mechanics on the experimental data, we demonstrate that, at low Λ, the nanolayers within the SL exhibit strong coherency strains, as misfit dislocation formation is energetically unfavourable. With increasing layer thicknesses, misfit dislocations start to form in the two layer materials – first in Cr0.37 Al0.63 N and slightly Λ-shifted in TiN. The associated evolution of coherency strains in the TiN and Cr0.37 Al0.63 N layers causes the observed bilayer-period-dependent toughness enhancement beyond the constituent materials. Supporting structural, morphological, chemical, and mechanical analyses are provided by X-ray diffraction, electronAbstract: Through superlattice (SL) architectures, the hardness as well as the fracture toughness of ceramic thin films can be enhanced. The hardness-related SL effect is reasonably well understood, however, the mechanisms driving the toughness-enhancing effect are still partially unexplored. To isolate the effect of the lattice mismatch from the elastic moduli mismatch on the toughness-related properties, we designed TiN/Cr0.37 Al0.63 N superlattices, in which the involved layers have effectively identical elastic moduli, but sizeably different lattice parameters. Micromechanical bending tests show an enhanced fracture toughness KIC of the SLs (2.5±0.1 MPa√m) compared with monolithic TiN (2.0±0.1 MPa√m) and Cr0.37 Al0.63 N (1.3±0.1 MPa√m) with only a weak bilayer period (Λ) dependence. Superimposing an analytical model based on continuum mechanics on the experimental data, we demonstrate that, at low Λ, the nanolayers within the SL exhibit strong coherency strains, as misfit dislocation formation is energetically unfavourable. With increasing layer thicknesses, misfit dislocations start to form in the two layer materials – first in Cr0.37 Al0.63 N and slightly Λ-shifted in TiN. The associated evolution of coherency strains in the TiN and Cr0.37 Al0.63 N layers causes the observed bilayer-period-dependent toughness enhancement beyond the constituent materials. Supporting structural, morphological, chemical, and mechanical analyses are provided by X-ray diffraction, electron microscopy techniques, and nanoindentation. Graphical abstract: Image, graphical abstract … (more)
- Is Part Of:
- Acta materialia. Volume 202(2021)
- Journal:
- Acta materialia
- Issue:
- Volume 202(2021)
- Issue Display:
- Volume 202, Issue 2021 (2021)
- Year:
- 2021
- Volume:
- 202
- Issue:
- 2021
- Issue Sort Value:
- 2021-0202-2021-0000
- Page Start:
- 376
- Page End:
- 386
- Publication Date:
- 2021-01-01
- Subjects:
- Superlattice -- Thin Film -- Transition Metal Nitrides -- Fracture Toughness -- Continuum Mechanics
Materials -- Periodicals
Materials science -- Periodicals
Materials -- Mechanical properties -- Periodicals
Metallurgy -- Periodicals
Chemistry, Inorganic -- Periodicals
620.112 - Journal URLs:
- http://www.sciencedirect.com/science/journal/13596454 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.actamat.2020.10.068 ↗
- Languages:
- English
- ISSNs:
- 1359-6454
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 0629.920000
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