4.7 Article

Aggravated stress fluctuation and mechanical size effects of nanoscale lamellar bone pillars

期刊

NPG ASIA MATERIALS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41427-021-00328-6

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资金

  1. National Natural Science Foundation of China [51875241]
  2. National Key R&D Program of China [2018YFF010124]
  3. Jilin Province Science and Technology Development Plan [20190302078GX, YDZJ202101ZYTS129]

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Research on nanoscale lamellar bone pillars revealed significant size effects and stress fluctuations, with smaller diameters showing increased strength, ductility, and stress fluctuation amplitudes. The critical diameter leading to a brittle-to-ductile transition was identified, and stress fluctuations exhibited a significant size effect at the nanoscale.
Significant size effect and stress fluctuation of nanoscale lamellar bone pillars with diameters ranging from 640 to 4971 nm inside a single lamella. A size effect-induced brittle-to-ductile transition was revealed, the stress fluctuation behaviors were elaborated through a layered dislocation movement theory on the basis of strain gradient plasticity theory. The size effects of mechanical properties influence the microdeformation behaviors and failure mechanisms of hierarchical lamellar bones. Investigations of the continuous deformation behaviors and structure-behavior-property relationships of nanoscale lamellar bones provide essential data for reducing the risk of fracture. Here, five pillars with diameters ranging from 640 to 4971 nm inside a single lamella were fabricated. In situ pillar compressive tests inside a scanning electron microscope directly revealed the diameter-dependent enhanced strength, ductility, and stress fluctuation amplitude. Real-time observations also revealed the segmented deformation and morphological anisotropy of pillars with smaller diameters and the slight elastic recovery of pillars with larger diameters. The critical diameter leading to the brittle-to-ductile transition was confirmed. The analogous to serrated flow stress fluctuation behaviors at the nanoscale exhibited a significant size effect, with coincident fluctuation cycles independent of diameter, and each cycle of the fluctuation manifested as a slow stress increase and a rapid stress release. The discontinuous fracture of collagen fibrils, embedded enhancement of hydroxyapatite crystals, and layered dislocation movement on the basis of strain gradient plasticity theory were expected to induce cyclical stress fluctuations with different amplitudes.

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