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具有比率型双发射 pH 敏感性的多隔室聚合物纳米结构。

Multicompartment polymer nanostructures with ratiometric dual-emission pH-sensitivity.

机构信息

Department of Chemistry, Texas A&M University, College Station, Texas 77842, USA.

出版信息

J Am Chem Soc. 2011 Jun 8;133(22):8534-43. doi: 10.1021/ja200182t. Epub 2011 May 16.

Abstract

Pyrazine-labeled multicompartment nanostructures are shown to exhibit enhanced pH-responsive blue-shifted fluorescence emission intensities compared to their simpler core-shell spherical analogs. An amphiphilic linear triblock terpolymer of ethylene oxide, N-acryloxysuccinimide, and styrene, PEO(45)-b-PNAS(105)-b-PS(45), which lacks significant incompatibility for the hydrophobic block segments and undergoes gradual hydrolysis of the NAS units, underwent supramolecular assembly in mixtures of organic solvent and water to afford multicompartment micelles (MCMs) with a narrow size distribution. The assembly process was followed over time and found to evolve from individual polymer nanodroplets containing internally phase segregated domains, of increasing definition, and ultimately to dissociate into discrete micelles. Upon covalent cross-linking of the MCMs with pH-insensitive pyrazine-based diamino cross-linkers, pH-responsive, photonic multicompartment nanostructures (MCNs) were produced. These MCNs exhibited significant enhancement of overall structural stability, in comparison with the MCMs, and internal structural tunability through the cross-linking chemistry. Meanwhile, the complex compartmentalized morphology exerted unique pH-responsive fluorescence dual-emission properties, indicating promise in ratiometric pH-sensing applications.

摘要

吡嗪标记的多隔室纳米结构表现出比其简单的核壳球形类似物更强的 pH 响应蓝色荧光发射强度。一种缺少对疏水性嵌段显著不相容性并经历 NAS 单元逐渐水解的亲水性线性三嵌段共聚物,聚环氧乙烷(PEO)(45)-b-丙烯酰氧基琥珀酰亚胺(NAS)(105)-b-苯乙烯(PS)(45),在有机溶剂和水的混合物中进行超分子组装,形成具有窄粒径分布的多隔室胶束(MCM)。随着时间的推移,追踪了组装过程,发现其从含有内部相分离域的单独聚合物纳米液滴演变而来,这些域的定义越来越清晰,最终解离成离散的胶束。用 pH 不敏感的基于吡嗪的二氨基交联剂对 MCM 进行共价交联后,生成了 pH 响应的、光子学多隔室纳米结构(MCN)。与 MCM 相比,这些 MCN 表现出显著增强的整体结构稳定性,并且通过交联化学具有内部结构可调性。同时,复杂的隔室形态表现出独特的 pH 响应荧光双发射性质,表明在比率 pH 传感应用中具有潜力。

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