分子手性调控糖基嵌段共聚物的相行为

IF 5.4 1区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY GIANT Pub Date : 2024-06-14 DOI:10.1016/j.giant.2024.100308
Kai Chen , Chaehun Lee , Chun-Yu Chen , Toshifumi Satoh , Takuya Isono , Hsin-Lung Chen
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引用次数: 0

摘要

由糖块组成的糖基嵌段共聚物(BCO)具有很高的分离强度,克服了传统嵌段共聚物在获得超小特征尺寸的有序纳米结构方面的局限性。本研究探讨了分子手性对葡萄糖嵌段-生育酚(Glc-b-Toc)嵌段共聚物自组装行为的影响,其中 Toc 嵌段既可以是纯手性嵌段,也可以是立体异构体的混合物。手性 BCO 和外消旋 BCO 都形成了六边形穿孔层 (HPL) 结构,其单胞的纵横比(c/a)异常小,这归因于 Glc 嵌段具有增强氢键形成的倾向。随着温度的升高,氢键相互作用的优势逐渐减弱,导致 c/a 比逐渐增大,最终 HPL 结构转变为双陀螺(DG)相。Toc 嵌段的手性增强了 BCO 的有效偏析强度,导致与 HPL 到 DG 和 DG 到六方柱(HEX)转变相关的阶次转变温度升高。在 HPL 相窗口内,手性 BCO 在调整 c/a 比的热诱导结构重组过程中表现出明显较慢的动力学速度,尤其是在冷却过程中。因此,手性 BCO 的结构重组出现了明显的滞后现象。这一现象是由于 Toc 嵌段之间的手性相互作用限制了 BCO 分子在结构重组过程中的扩散。
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Phase Behavior of Sugar-based Block Co-oligomer Modulated by Molecular Chirality

Sugar-based block co-oligomer (BCO) consisting of saccharide block exhibits high segregation strength that overcomes the limitation of the traditional block copolymers for accessing the ordered nanostructures with ultrasmall feature size. This study explores the influence of molecular chirality on the self-assembly behavior of glucose-block-tocopherol (Glc-b-Toc) BCOs, wherein the Toc blocks were either pure in chirality or being a mixture of the stereoisomers. Both the chiral and racemic BCOs formed a hexagonal perforated layer (HPL) structure with an unusually small aspect ratio (c/a) of the unit cell, attributable to the propensity of the Glc block to enhance hydrogen bonding formation. As the temperature was increased, the dominance of hydrogen bonding interactions diminished, resulting in a gradual increase in the c/a ratio and eventually a transformation of the HPL structure to a double gyroid (DG) phase. The chirality of the Toc block enhanced the effective segregation strength of the BCO, leading to elevated order-order transition temperatures associated with the HPL-to-DG and DG-to-hexagonally packed cylinder (HEX) transitions. Within the HPL phase window, the chiral BCO exhibited significantly slower kinetics during thermally-induced structural reorganization in adjusting the c/a ratio, especially in the cooling process. Consequently, a pronounced hysteresis in the structural reorganization of the chiral BCO was observed. This phenomenon was ascribed to the chiral interaction between the Toc blocks, which limited the diffusion of the BCO molecules for the structural reorganization.

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来源期刊
GIANT
GIANT Multiple-
CiteScore
8.50
自引率
8.60%
发文量
46
审稿时长
42 days
期刊介绍: Giant is an interdisciplinary title focusing on fundamental and applied macromolecular science spanning all chemistry, physics, biology, and materials aspects of the field in the broadest sense. Key areas covered include macromolecular chemistry, supramolecular assembly, multiscale and multifunctional materials, organic-inorganic hybrid materials, biophysics, biomimetics and surface science. Core topics range from developments in synthesis, characterisation and assembly towards creating uniformly sized precision macromolecules with tailored properties, to the design and assembly of nanostructured materials in multiple dimensions, and further to the study of smart or living designer materials with tuneable multiscale properties.
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