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分子马达两亲体的动态组装控制宏观泡沫性质。

Dynamic Assemblies of Molecular Motor Amphiphiles Control Macroscopic Foam Properties.

机构信息

Center for System Chemistry, Stratingh Institute for Chemistry, University of Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands.

Key Laboratory of Eco-Textile, Ministry of Education, College of Textiles Science and Engineering, Jiangnan University, 1800 Lihu Road, Wuxi, 214122, People's Republic of China.

出版信息

J Am Chem Soc. 2020 Jun 3;142(22):10163-10172. doi: 10.1021/jacs.0c03153. Epub 2020 May 21.

Abstract

Stimuli-responsive supramolecular assemblies controlling macroscopic transformations with high structural fluidity, i.e., foam properties, have attractive prospects for applications in soft materials ranging from biomedical systems to industrial processes, e.g., textile coloring. However, identifying the key processes for the amplification of molecular motion to a macroscopic level response is of fundamental importance for exerting the full potential of macroscopic structural transformations by external stimuli. Herein, we demonstrate the control of dynamic supramolecular assemblies in aqueous media and as a consequence their macroscopic foam properties, e.g., foamability and foam stability, by large geometrical transformations of dual light/heat stimuli-responsive molecular motor amphiphiles. Detailed insight into the reversible photoisomerization and thermal helix inversion at the molecular level, supramolecular assembly transformations at the microscopic level, and the stimuli-responsive foam properties at the macroscopic level, as determined by UV-vis absorption and NMR spectroscopies, electron microscopy, and foamability and surface tension measurements, is presented. By selective use of external stimuli, e.g., light or heat, multiple states and properties of macroscopic foams can be controlled with very dilute aqueous solutions of the motor amphiphiles (0.2 weight%), demonstrating the potential of multiple stimuli-responsive supramolecular systems based on an identical molecular amphiphile and providing opportunities for future soft materials.

摘要

刺激响应超分子组装体控制具有高结构流动性的宏观转变,例如泡沫性能,在从生物医学系统到工业过程等软物质中的应用具有吸引力,例如纺织品染色。然而,确定将分子运动放大到宏观水平响应的关键过程对于通过外部刺激发挥宏观结构转变的全部潜力至关重要。在此,我们通过双光/热刺激响应分子马达两亲物的大几何变形,证明了在水介质中动态超分子组装体的控制以及因此其宏观泡沫性能(例如起泡性和泡沫稳定性)。通过 UV-vis 吸收和 NMR 光谱、电子显微镜以及起泡性和表面张力测量,在分子水平上深入了解可逆光致异构化和热螺旋反转、微观水平上的超分子组装体转变以及宏观水平上的刺激响应泡沫性能。通过选择性地使用外部刺激,例如光或热,可以用马达两亲物的非常稀的水溶液(0.2 重量%)控制宏观泡沫的多种状态和性质,展示了基于相同分子两亲物的多刺激响应超分子系统的潜力,并为未来的软材料提供了机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4101/7273467/b3e8c03f1721/ja0c03153_0001.jpg

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