Faculty of Engineering, Hokkaido University, Sapporo 060-8628, Japan.
Graduate School of Chemical Sciences and Engineering, Hokkaido University, Sapporo 060-8628, Japan.
Biomacromolecules. 2022 Sep 12;23(9):3978-3989. doi: 10.1021/acs.biomac.2c00813. Epub 2022 Aug 30.
Carbohydrates are key building blocks for advanced functional materials owing to their biological functions and unique material properties. Here, we propose a star-shaped discrete block co-oligomer (BCO) platform to access carbohydrate nanostructures in bulk and thin-film states via the microphase separation of immiscible carbohydrate and hydrophobic blocks (maltooligosaccharides with 1-4 glucose units and solanesol, respectively). BCOs with various star-shaped architectures and saccharide volume fractions were synthesized using a modular approach. In the bulk, the BCOs self-assembled into common lamellar, cylindrical, and spherical carbohydrate microdomains as well as double gyroid, hexagonally perforated lamellar, and network morphologies with domain spacings of ∼7 nm. In thin films, long-range-ordered periodic carbohydrate microdomains were fabricated via spin coating. Such controlled spatial arrangements of functional carbohydrate moieties on the nanoscale have great application potential in biomedical and nanofabrication fields.
碳水化合物由于其生物功能和独特的材料特性,是先进功能材料的主要构建块。在这里,我们提出了一种星形离散嵌段共低聚物(BCO)平台,通过不混溶的碳水化合物和疏水性嵌段(分别为 1-4 个葡萄糖单元的麦芽寡糖和茄呢醇)的微相分离,在体相和薄膜状态下获得碳水化合物纳米结构。使用模块化方法合成了具有各种星形结构和糖含量的 BCO。在体相,BCO 自组装成常见的层状、圆柱状和球状碳水化合物微区,以及双各向异性、六边形穿孔层状和网络形态,畴间距约为 7nm。在薄膜中,通过旋涂制备了长程有序的周期性碳水化合物微区。这种在纳米尺度上对功能性碳水化合物部分的可控空间排列在生物医学和纳米制造领域具有巨大的应用潜力。