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Synchrotron Microtomography Reveals the Fine Three-Dimensional Porosity of Composite Polysaccharide Aerogels

机译:同步电子显微镜显示复合多糖气凝胶的精细三维孔隙率

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摘要

This study investigates the impact of ice-templating conditions on the morphological features of composite polysaccharide aerogels in relation to their mechanical behavior and aims to get a better insight into the parameters governing these properties. We have prepared polysaccharide aerogels of guar galactomannan (GM) and tamarind seed xyloglucan (XG) by enzymatic oxidation with galactose oxidase (GaO) to form hydrogels, followed by conventional and unidirectional ice-templating (freezing) methods and lyophilization to form aerogels. Composite polysaccharide aerogels were prepared by incorporating nanofibrillated cellulose (NFC) into polysaccharide solutions prior to enzymatic oxidation and gel formation; such a cross linking technique enabled the homogeneous distribution of the NFC reinforcement into the gel matrix. We conducted phase-enhanced synchrotron X-ray microtomography (XMT) scans and visualized the internal microstructure of the aerogels in three-dimensional (3D) space. Volume-weighted pore-size and pore-wall thickness distributions were quantitatively measured and correlated to the aerogels’ mechanical properties regarding ice-templating conditions. Pore-size distribution and orientation depended on the ice-templating methods and the NFC reinforcement that significantly determined the mechanical and shape-recovery behavior of the aerogels. The results obtained will guide the design of the microporous structure of polysaccharide aerogels with optimal morphology and mechanical behavior for life-sciences applications.
机译:这项研究调查了冰模板条件对复合多糖气凝胶的形态特征及其机械性能的影响,旨在更好地了解控制这些特性的参数。我们通过半乳糖氧化酶(GaO)酶促氧化形成水凝胶,然后通过常规和单向冰模板化(冷冻)方法冻干并冻干形成气凝胶,制备了瓜尔半乳甘露聚糖(GM)和罗望子种子木葡聚糖(XG)的多糖气凝胶。通过在酶促氧化和凝胶形成之前将纳米原纤化纤维素(NFC)掺入多糖溶液中来制备复合多糖气凝胶。这种交联技术使NFC增强剂均匀分布到凝胶基质中。我们进行了相位增强的同步加速器X射线显微断层扫描(XMT)扫描,并可视化了三维(3D)空间中气凝胶的内部微观结构。定量测量了体积加权的孔径和孔壁厚度分布,并将其与气溶胶在冰模板条件下的机械性能相关联。孔的大小分布和方向取决于制冰方法和NFC增强材料,后者显着决定了气凝胶的机械性能和形状恢复行为。获得的结果将指导多糖气凝胶微孔结构的设计,具有生命科学应用的最佳形态和机械性能。

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