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1D vs. 2D shape selectivity in the crystallization-driven self-assembly of polylactide block copolymers

机译:1d Vs。 2D形状选择性在聚丁烷嵌段共聚物的结晶自组装中

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2D materials such as graphene, LAPONITE? clays or molybdenum disulfide nanosheets are of extremely high interest to the materials community as a result of their high surface area and controllable surface properties. While several methods to access 2D inorganic materials are known, the investigation of 2D organic nanomaterials is less well developed on account of the lack of ready synthetic accessibility. Crystallization-driven self-assembly (CDSA) has become a powerful method to access a wide range of complex but precisely-defined nanostructures. The preparation of 2D structures, however, particularly those aimed towards biomedical applications, is limited, with few offering biocompatible and biodegradable characteristics as well as control over self-assembly in two dimensions. Herein, in contrast to conventional self-assembly rules, we show that the solubility of polylactide (PLLA)-based amphiphiles in alcohols results in unprecedented shape selectivity based on unimer solubility. We use log?Poct analysis to drive solvent selection for the formation of large uniform 2D diamond-shaped platelets, up to several microns in size, using long, soluble coronal blocks. By contrast, less soluble PLLA-containing block copolymers yield cylindrical micelles and mixed morphologies. The methods developed in this work provide a simple and consistently reproducible protocol for the preparation of well-defined 2D organic nanomaterials, whose size and morphology are expected to facilitate potential applications in drug delivery, tissue engineering and in nanocomposites.
机译:2D材料如石墨烯,兰松岩?由于其高表面积和可控表面性质,粘土或二硫化钼纳米型对材料界非常高的兴趣。虽然已知几种进入2D无机材料的方法,但由于缺乏现成的合成可用性,对2D有机纳米材料的研究较少。结晶驱动的自组装(CDSA)已成为进入宽范围的复杂而精确定义的纳米结构的强大方法。然而,2D结构的制备特别是旨在生物医学应用的结构是有限的,只有很少提供生物相容性和可生物降解的特性以及以两个维度的自组装控制。在此,与常规的自组装规则相比,我们表明,基于卸载性的醇中的聚丙酯(PLLA)的两亲含量的溶解度导致前所未有的形状选择性。我们使用log? p 10月 分析,以驱动溶剂选择,形成大均匀2d菱形血小板,尺寸最多几微米,使用长,可溶性冠状块。相比之下,含可溶性PLLA的嵌段共聚物产生圆柱形胶束和混合形态。本作作品中开发的方法提供了一种简单且始终可再现的方案,用于制备明确定义的2D有机纳米材料,预期预期的尺寸和形态可促进药物递送,组织工程和纳米复合材料中的潜在应用。

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