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Biodirected epitaxial nanodeposition of polymers on oriented macromolecular templates

机译:定向大分子模板上聚合物的生物定向外延纳米沉积

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Biodirected epitaxial nanodeposition of polymers was achieved on a template with an oriented molecular surface. Acetobacter xyli-num synthesized a ribbon of cellulose I microfibrils onto a fixed, nematic ordered substrate of glucan chains with unique surface characteristics. The substrate directed the orientation of the motion due to the inverse force of the secretion during biosynthesis, and the microfibrils were aligned along the orientation of the molecular template. Using real-time video analysis, the patterns and rates of deposition were elucidated. Field emission scanning electron microscopy revealed that a strong molecular interaction allowed for the deposition of nascent biosynthesized 3.5-nm cellulose microfibrils with inter-microfibrillar spacings of 7-8 nm on the surface of the template. The cellulose was deposited parallel to the molecular orientation of the template. Directed cellulose synthesis and ordered movement of cells were observed only by using a nematic ordered substrate made from cellulose, and not from ordered crystalline cellulose substrates or ordered cellulose-related synthetic polymers such as polyvinyl alcohol. This unique relationship between directed biosynthesis and the ordered fabrication from the nano to the micro scales could lead to new methodologies for the design of functional materials with desired nanostructures.
机译:在具有定向分子表面的模板上实现了聚合物的生物定向外延纳米沉积。木醋杆菌(Acetobacter xyli-num)将纤维素I微纤维的条带合成到具有独特表面特征的葡聚糖链的固定的,向列相有序的底物上。由于生物合成过程中分泌的反作用力,基底指示了运动的方向,并且微纤维沿着分子模板的方向排列。使用实时视频分析,阐明了沉积的模式和速率。场发射扫描电子显微镜显示,强大的分子相互作用使新生的生物合成的3.5 nm纤维素微纤维沉积在模板表面上,微纤维间的间距为7-8 nm。纤维素平行于模板的分子取向沉积。仅通过使用由纤维素制成的向列有序底物观察到定向纤维素合成和细胞的有序运动,而不是由有序结晶纤维素底物或有序纤维素相关的合成聚合物(如聚乙烯醇)观察到。定向生物合成与从纳米到微米的有序制造之间的这种独特关系可能会导致设计具有所需纳米结构的功能材料的新方法。

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