材料科学
复合材料
刚度
粘弹性
扫描电子显微镜
极限抗拉强度
韧带
纤维
纤维
电子显微镜
生物材料
各向同性
纳米技术
生物物理学
光学
解剖
物理
生物
医学
作者
F. Schütte,Stefan Mayr
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2024-01-23
卷期号:10 (2): 782-790
被引量:1
标识
DOI:10.1021/acsbiomaterials.3c01072
摘要
Ten MeV electron beam treatment facilitates a biomimetic introduction of cross-links in collagenous biopolymer systems, modifying their viscoelastic properties, mechanical stability, and swelling behavior. For reconstituted collagen type I fibers, electron-induced cross-linking opens up new perspectives regarding future biomedical applications in terms of tissue and ligament engineering. We demonstrate how electron irradiation affects stiffness both in low-strain regimes and in postyield regimes of biocompatible reconstituted rat tail collagen type I fibers. Stress-strain tests show a dose-dependent increase in modulus in the nonlinear elastic response, indicating a central role of induced cross-links in mechanical stability. Environmental scanning electron microscopy after fiber rupture reveals aligned distributed collagen fibril domains under the fiber surface for as-prepared fibers, accompanied by a ductile fracture behavior, whereas, in tensile tests imaged by light microscopy after 10 MeV electron treatment, isotropic network topologies are observed until the occurrence of a brittle type of rupture. Based on the biomimicry of the process, these findings might pave the way for a novel type of synthesis of tailored tendon or ligament substitutes.
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