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独特的温度依赖性超分子自组装:从分级 1D 纳米结构到超水凝胶。

Unique temperature-dependent supramolecular self-assembly: from hierarchical 1D nanostructures to super hydrogel.

机构信息

Beijing National Laboratory for Molecular , College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.

出版信息

J Phys Chem B. 2010 Sep 16;114(36):11725-30. doi: 10.1021/jp1047369.

Abstract

Supramolecular self-assembly can not only lead to a better understanding of biological systems, but also can enable rational building of complex and functional materials. In this report, hierarchical one-dimensional (1D) architectures involving nanotubes, coiled-coil ropelike structures, nanohelices, and nanoribbons are created via lanthanum-cholate supramolecular self-assembly. These sophisticated self-assemblies are proven to be mediated by temperature. The entanglement of one-dimensional nanostructures is demonstrated to give rise to fascinating "super" hydrogel, which can realize water gelation at extremely low concentration. Unprecedented water gelation behaviors, that is, heating-enhanced stiffness and heating-promoted gelation, are found in lanthanum-cholate supramolecular hydrogel. The driving forces of self-assembled complex nanostructures and the unique role of temperature are also discussed.

摘要

超分子自组装不仅可以帮助我们更好地理解生物系统,还可以使我们能够合理构建复杂而多功能的材料。在本报告中,通过胆酸盐超分子自组装构建了涉及纳米管、螺旋绳状结构、纳米螺旋和纳米带的分级一维(1D)结构。这些复杂的自组装被证明是由温度介导的。一维纳米结构的缠结导致了引人入胜的“超级”水凝胶的形成,其可以在极低的浓度下实现水凝胶化。在胆酸盐超分子水凝胶中发现了前所未有的水凝胶化行为,即加热增强的刚性和加热促进的凝胶化。还讨论了自组装复杂纳米结构的驱动力和温度的独特作用。

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