Shear-band blunting governs superior mechanical properties of shape memory metallic glass composites
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in: Acta Materialia, Jahrgang 241.2022, Nr. December, 118422, 12.2022.
Publikationen: Beitrag in Fachzeitschrift › Artikel › Forschung › (peer-reviewed)
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TY - JOUR
T1 - Shear-band blunting governs superior mechanical properties of shape memory metallic glass composites
AU - Zhang, Long
AU - Yan, Tingyi
AU - Şopu, Daniel
AU - Wu, Yi
AU - Jiang, Binbin
AU - Du, Kui
AU - Zhang, Haifeng
AU - Eckert, Jürgen
N1 - Publisher Copyright: © 2022 Acta Materialia Inc.
PY - 2022/12
Y1 - 2022/12
N2 - Metallic glass composites (MGCs) containing crystals can display tensile ductility, overcoming the catastrophic failure of bulk metallic glasses. However, MGCs containing crystals with dislocation-mediated plasticity generally undergo strain-softening, but MGCs containing shape memory crystals can exhibit strain-hardening. The origin of large ductility and strain-hardening of shape memory MGCs as well as the interactions of shear bands (SBs) with crystals remains elusive. Here, two kinds of MGCs containing crystals with dislocation-mediated plasticity or shape memory crystals with martensitic transformations are investigated. It is found that the behavior and properties of SBs in glass matrix can be significantly altered by deformation characteristics of crystals. If crystals deform via dislocations, SBs are narrow, sharp and become mature. In comparison, SBs in shape memory MGCs continuously broaden without maturing by following the growth of thick martensitic plates. Broad SBs tend to bifurcate during propagation, and bifurcated SBs further induce the formation of more martensitic variants in crystals, benefiting strain delocalization. Broadening and bifurcation of SBs cause the SB blunting, which governs the superior mechanical properties of shape memory MGCs. These findings not only deepen the understanding of SBs in glass materials, but also provide a fundamental basis to enhance their mechanical properties by engineering of blunt SBs.
AB - Metallic glass composites (MGCs) containing crystals can display tensile ductility, overcoming the catastrophic failure of bulk metallic glasses. However, MGCs containing crystals with dislocation-mediated plasticity generally undergo strain-softening, but MGCs containing shape memory crystals can exhibit strain-hardening. The origin of large ductility and strain-hardening of shape memory MGCs as well as the interactions of shear bands (SBs) with crystals remains elusive. Here, two kinds of MGCs containing crystals with dislocation-mediated plasticity or shape memory crystals with martensitic transformations are investigated. It is found that the behavior and properties of SBs in glass matrix can be significantly altered by deformation characteristics of crystals. If crystals deform via dislocations, SBs are narrow, sharp and become mature. In comparison, SBs in shape memory MGCs continuously broaden without maturing by following the growth of thick martensitic plates. Broad SBs tend to bifurcate during propagation, and bifurcated SBs further induce the formation of more martensitic variants in crystals, benefiting strain delocalization. Broadening and bifurcation of SBs cause the SB blunting, which governs the superior mechanical properties of shape memory MGCs. These findings not only deepen the understanding of SBs in glass materials, but also provide a fundamental basis to enhance their mechanical properties by engineering of blunt SBs.
KW - Martensitic transformations
KW - Metallic glass composites
KW - Shear-band blunting
KW - Strain-hardening
KW - Tensile ductility
UR - http://www.scopus.com/inward/record.url?scp=85139724746&partnerID=8YFLogxK
U2 - 10.1016/j.actamat.2022.118422
DO - 10.1016/j.actamat.2022.118422
M3 - Article
AN - SCOPUS:85139724746
VL - 241.2022
JO - Acta Materialia
JF - Acta Materialia
SN - 1359-6454
IS - December
M1 - 118422
ER -