Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers

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Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers. / Wang, Y. Q.; Fritz, Reinhard; Kiener, Daniel et al.
in: Acta Materialia, Jahrgang 180.2019, Nr. November, 07.09.2019, S. 73-83.

Publikationen: Beitrag in FachzeitschriftArtikelForschung(peer-reviewed)

Vancouver

Wang YQ, Fritz R, Kiener D, Zhang JY, Liu G, Kolednik O et al. Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers. Acta Materialia. 2019 Sep 7;180.2019(November):73-83. doi: 10.1016/j.actamat.2019.09.002

Author

Wang, Y. Q. ; Fritz, Reinhard ; Kiener, Daniel et al. / Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers. in: Acta Materialia. 2019 ; Jahrgang 180.2019, Nr. November. S. 73-83.

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@article{093a17430e86412aaf48dc2b0a944a0e,
title = "Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers",
abstract = "In order to quantify the fracture toughness and reveal the failure mechanism of crystalline/amorphous nanolaminates (C/ANLs), in-situ micro-cantilever bending tests were performed on Ag/CuZr and Mo/CuZr C/ANLs in a scanning electron microscope over a wide range of cantilever widths from several microns to the submicron scale. The results demonstrate that the fracture behavior was strongly influenced by sample size and constituent phases, respectively. The Ag/CuZr micro-cantilevers failed in a ductile manner, with fracture toughnesses higher than the Mo/CuZr samples that exhibited brittle failure. Both materials also displayed different cantilever width-dependences of fracture toughness. The Ag/CuZr beams showed a fracture toughness that increases with the cantilever width, mainly due to a size-dependent constraining effect on the deformation of the crystalline phase. For the Mo/CuZr beams, the fracture toughness decreased gradually to a low plateau as the cantilever width exceeded ~1500 nm, which can be rationalized by a transition in stress condition. The underlying fracture mechanism of the Ag/CuZr micro-cantilevers was identified as the interconnection of microcracks initiated in the amorphous CuZr layers, compared to a catastrophically penetrating crack propagation in the Mo/CuZrsamples. The discrepancy in size-dependent fracture behavior between the two material systems is discussed in terms of plastic energy dissipation of ductile phases, crack tip blunting, crack bridging and the effect of strain gradient in the plastic zone on crack propagation.",
keywords = "Bending tests, Cantilevers, Crystalline/amorphous nanolaminates, Fracture toughness, Size effect",
author = "Wang, {Y. Q.} and Reinhard Fritz and Daniel Kiener and Zhang, {J. Y.} and G. Liu and Othmar Kolednik and Reinhard Pippan and J. Sun",
year = "2019",
month = sep,
day = "7",
doi = "10.1016/j.actamat.2019.09.002",
language = "English",
volume = "180.2019",
pages = "73--83",
journal = "Acta Materialia",
issn = "1359-6454",
publisher = "Elsevier",
number = "November",

}

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TY - JOUR

T1 - Fracture behavior and deformation mechanisms in nanolaminated crystalline/amorphous micro-cantilevers

AU - Wang, Y. Q.

AU - Fritz, Reinhard

AU - Kiener, Daniel

AU - Zhang, J. Y.

AU - Liu, G.

AU - Kolednik, Othmar

AU - Pippan, Reinhard

AU - Sun, J.

PY - 2019/9/7

Y1 - 2019/9/7

N2 - In order to quantify the fracture toughness and reveal the failure mechanism of crystalline/amorphous nanolaminates (C/ANLs), in-situ micro-cantilever bending tests were performed on Ag/CuZr and Mo/CuZr C/ANLs in a scanning electron microscope over a wide range of cantilever widths from several microns to the submicron scale. The results demonstrate that the fracture behavior was strongly influenced by sample size and constituent phases, respectively. The Ag/CuZr micro-cantilevers failed in a ductile manner, with fracture toughnesses higher than the Mo/CuZr samples that exhibited brittle failure. Both materials also displayed different cantilever width-dependences of fracture toughness. The Ag/CuZr beams showed a fracture toughness that increases with the cantilever width, mainly due to a size-dependent constraining effect on the deformation of the crystalline phase. For the Mo/CuZr beams, the fracture toughness decreased gradually to a low plateau as the cantilever width exceeded ~1500 nm, which can be rationalized by a transition in stress condition. The underlying fracture mechanism of the Ag/CuZr micro-cantilevers was identified as the interconnection of microcracks initiated in the amorphous CuZr layers, compared to a catastrophically penetrating crack propagation in the Mo/CuZrsamples. The discrepancy in size-dependent fracture behavior between the two material systems is discussed in terms of plastic energy dissipation of ductile phases, crack tip blunting, crack bridging and the effect of strain gradient in the plastic zone on crack propagation.

AB - In order to quantify the fracture toughness and reveal the failure mechanism of crystalline/amorphous nanolaminates (C/ANLs), in-situ micro-cantilever bending tests were performed on Ag/CuZr and Mo/CuZr C/ANLs in a scanning electron microscope over a wide range of cantilever widths from several microns to the submicron scale. The results demonstrate that the fracture behavior was strongly influenced by sample size and constituent phases, respectively. The Ag/CuZr micro-cantilevers failed in a ductile manner, with fracture toughnesses higher than the Mo/CuZr samples that exhibited brittle failure. Both materials also displayed different cantilever width-dependences of fracture toughness. The Ag/CuZr beams showed a fracture toughness that increases with the cantilever width, mainly due to a size-dependent constraining effect on the deformation of the crystalline phase. For the Mo/CuZr beams, the fracture toughness decreased gradually to a low plateau as the cantilever width exceeded ~1500 nm, which can be rationalized by a transition in stress condition. The underlying fracture mechanism of the Ag/CuZr micro-cantilevers was identified as the interconnection of microcracks initiated in the amorphous CuZr layers, compared to a catastrophically penetrating crack propagation in the Mo/CuZrsamples. The discrepancy in size-dependent fracture behavior between the two material systems is discussed in terms of plastic energy dissipation of ductile phases, crack tip blunting, crack bridging and the effect of strain gradient in the plastic zone on crack propagation.

KW - Bending tests

KW - Cantilevers

KW - Crystalline/amorphous nanolaminates

KW - Fracture toughness

KW - Size effect

UR - http://www.scopus.com/inward/record.url?scp=85071982989&partnerID=8YFLogxK

U2 - 10.1016/j.actamat.2019.09.002

DO - 10.1016/j.actamat.2019.09.002

M3 - Article

AN - SCOPUS:85071982989

VL - 180.2019

SP - 73

EP - 83

JO - Acta Materialia

JF - Acta Materialia

SN - 1359-6454

IS - November

ER -