光触发催化实现超分子水凝胶的空间控制自组装。

IF 4.3 3区 化学 Q2 POLYMER SCIENCE
Jiahao Zhang, Kaiyu Jin, Yichen Xiao, Yifei Feng, Da Lu, Mai Chen, Mengran Sun, Dengyu Wang, Cheng Jin, Zhiling Li, Yiming Wang
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引用次数: 0

摘要

超分子自组装的空间控制在生命系统中普遍存在,但在合成场景中仍然难以复制。在此,以腙形成介导的超分子水凝胶体系为基础,通过光触发催化策略证明了超分子水凝胶的图案化。采用一种光酸发生器,它能在水溶液中辐照产生质子。产生的质子导致pH值下降约3个单位(初始pH 7.0),有效地加速了腙凝胶的形成和自组装。由于光触发的催化作用,在光酸发生器存在下的凝胶化样品表现出较低的临界凝胶浓度、较高的刚度和更致密的网络。重要的是,通过使用不同形状的掩膜进行选择性照射,可以制造出各种空间分辨的超分子水凝胶,这些水凝胶遵循掩膜的形状。利用光触发催化来实现对超分子自组装的空间控制的概念,为组织工程、单细胞操作和生物传感等各种应用提供了一种自下而上的结构软材料制造的替代方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatially Controlled Self-Assembly of Supramolecular Hydrogels Enabled by Light-Triggered Catalysis

Spatial control over supramolecular self-assembly prevails in living system, yet remains difficult to replicate in synthetic scenarios. Here, on the basis of a hydrazone formation-mediated supramolecular hydrogelation system, access to patterning of supramolecular hydrogels is demonstrated via a light-triggered catalysis strategy. A photoacid generator that can produce protons in aqueous solutions upon irradiation is employed. The generated protons lead to a drop in pH of around three units (initial pH 7.0), effectively accelerating the formation and self-assembly of the hydrazone gelators. Because of the light-triggered catalysis, the hydrogelation samples in the presence of photoacid generator show lower critical gelation concentration, higher stiffness, and denser networks. Importantly, by performing selective irradiation using differently shaped masks, various spatially resolved supramolecular hydrogels following the shapes of the masks are fabricated. The concept of using light-triggered catalysis to realize spatial control over supramolecular self-assembly provides an alternative approach toward bottom-up fabrication of structured soft materials for various applications such as tissue engineering, single cell manipulation, and biosensing.

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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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