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Physiologically Responsive, Mechanically Adaptive Bio-Nanocomposites for Biomedical Applications

机译:生物医学应用中具有生理响应性,机械适应性的生物纳米复合材料

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We report mechanically adaptive bionanocom-posites based on poly(vinyl alcohol) (PVOH) and cellulose nanocrystals (CNCs), whose mechanical properties change significantly upon exposure to simulated physiological conditions. These nanocomposites were made using CNCs derived from tunicates (t-CNCs) and cotton (c-CNCs) to explore how aspect ratio, surface charge density, and filler content influence the mechanical properties. Dynamic mechanical analysis data reveal a significant enhancement of the tensile storage modulus (E') upon introduction of CNCs, which scaled with the CNC type and content. For example, in the dry, glassy state at 25 °C, E' increased up to 23% (for c-CNCs) and 88% (for t-CNCs) compared to the neat polymer. Exposing the materials to simulated physiological conditions caused a drastic softening of the materials, from 9.0 GPa to 1 MPa for c-CNCs and from 13.7 GPa to 160 MPa for t-CNCs. The data show that the swelling characteristics of the nanocomposites and the extent of mechanical switching could be influenced via the amount and type of CNCs and also the processing conditions. The high stiffness in the dry state and the ability to tailor the mechanical contrast via composition and processing makes the new materials particularly useful as basis for adaptive biomedical implants.
机译:我们报告基于聚乙烯醇(PVOH)和纤维素纳米晶体(CNCs)的机械适应性bionanocomposites,其机械性能在暴露于模拟生理条件下会发生显着变化。这些纳米复合材料是使用来自被膜(t-CNCs)和棉花(c-CNCs)的CNCs制成的,以研究纵横比,表面电荷密度和填料含量如何影响机械性能。动态力学分析数据显示,引入CNC时,拉伸储能模量(E')显着提高,并随CNC类型和含量而定。例如,在25°C的干燥,玻璃态下,与纯聚合物相比,E'增加了23%(对于c-CNCs)和88%(对于t-CNCs)。将材料暴露于模拟的生理条件下会导致材料急剧软化,对于c-CNCs为9.0 GPa至1 MPa,对于t-CNCs为13.7 GPa至160 MPa。数据表明,纳米复合材料的溶胀特性和机械转换的程度可能受CNC数量和类型以及加工条件的影响。干燥状态下的高刚度以及通过成分和加工调整机械对比度的能力使新材料特别适合用作适应性生物医学植入物的基础。

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