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由二氧化碳的“绿色”气体刺激控制的嵌段共聚物自组装

Block copolymer self-assembly controlled by the "green" gas stimulus of carbon dioxide.

作者信息

Yan Qiang, Zhao Yue

机构信息

Département de chimie, Université de Sherbrooke, Sherbrooke, Quebec, Canada J1K 2R1.

出版信息

Chem Commun (Camb). 2014 Oct 11;50(79):11631-41. doi: 10.1039/c4cc03412k.

DOI:10.1039/c4cc03412k
PMID:25014333
Abstract

Stimuli-responsive macromolecules have inspired much interest in polymer science. Inputting an external stimulus to these polymers can modulate their chain structures and self-assembled architectures for functional outputs. This appealing feature has made this class of polymer materials promising for many emerging applications. In order to apply these polymer systems in organisms and further make them adaptive to physiological environments, it is important to explore new stimulation modes. In this Feature Article, we review the recent development of using carbon dioxide (CO2) as a stimulus for tuning or controlling block copolymer (BCP) self-assembly. We show that a series of CO2-responsive functionalities can easily be incorporated into BCP structures, and that rationally designed BCPs can have their self-assembled structures undergo drastic changes in size, shape, morphology and function, controlled by the amount of CO2 in aqueous solution. This gas stimulus has some distinct advantages over other conventional stimuli: it is truly "green" for the environment of the target polymer system without any chemical contaminations; the stimulating strength or magnitude can be precisely adjusted with the continuous gas flow; and, being a key metabolite in cells, it provides a convenient physiological signal to allow synthetic polymer systems to mimic certain properties of organelles and act as intelligent macromolecular machines and devices.

摘要

刺激响应性大分子引发了高分子科学领域的广泛关注。对这些聚合物施加外部刺激能够调节其链结构和自组装结构,从而实现功能输出。这一引人注目的特性使得这类高分子材料在许多新兴应用中颇具前景。为了将这些聚合物体系应用于生物体并使其进一步适应生理环境,探索新的刺激模式至关重要。在这篇专题文章中,我们综述了利用二氧化碳(CO₂)作为刺激手段来调控嵌段共聚物(BCP)自组装的最新进展。我们表明,一系列对CO₂响应的官能团能够轻松引入到BCP结构中,并且合理设计的BCP能够使其自组装结构在尺寸、形状、形态和功能上发生显著变化,这一变化由水溶液中CO₂的量控制。这种气体刺激相对于其他传统刺激具有一些明显的优势:对于目标聚合物体系的环境而言,它是真正“绿色”的,不会产生任何化学污染;刺激强度或量级能够通过持续的气流精确调节;而且,作为细胞中的一种关键代谢物,它提供了一种便利的生理信号,使合成聚合物体系能够模拟细胞器的某些特性,并充当智能大分子机器和装置。

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