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Updated: Apr 17, 2026

Ferromagnetic Bare Metal Stent for Endothelial Cell Capture and Retention
Published on: September 18, 2015
Insight into bending deformation behaviors of a Zr-based metallic glass thin beam for self-expanding aortic stent
Diao-Feng Li1, Qi-Chuan Cao2, Ya-Song Wang3
1Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang, 110016, China; School of Materials Science and Engineering, University of Science and Technology of China, Shenyang, 110016, China.
Abstract:
The mechanical reliability of self-expanding stents critically depends on the ability of their constituent beam elements to sustain large bending deformation without instability. While NiTi alloys are widely used, their processing complexity and transformation-related uncertainties motivate the exploration of alternative metallic systems. Zr-based metallic glasses (MGs), which combine high elastic recoverability with structural homogeneity, offer a compelling but insufficiently understood option under bending-dominated loading. In this study, the bending deformation behavior of a 0.25 mm-thick Zr61Ti2Cu25Al12 (ZT1) high-toughness MG beam is investigated under conditions relevant to miniaturized stent architectures. Emphasis is placed on precisely capturing the onset of yielding under bending, unraveling the two-stage evolution and underlying mechanisms of shear-band-mediated plasticity, and clarifying the size-dependent nature of plastic deformation stability in MG beams. The results reveal a distinct bending-specific deformation response that differs fundamentally from uniaxial loading, characterized by thickness-sensitive shear-band organization and enhanced resistance to shear localization. By linking these observations to fracture-mechanics considerations, this study provides a mechanistic framework for understanding why thin MG beams can accommodate large bending strains without catastrophic failure. The insights gained establish a foundation for the rational design of MG components in bending-dominated biomedical devices.
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