Insight into the Mechanisms Driving the Self-Assembly of Functional Interfaces: Moving from Lipids to Charged Amphiphilic Oligomers

两亲性 化学 和频发生光谱学 化学物理 水溶液 自组装 离子液体 聚合物 低聚物 分子 纳米技术 相(物质) 离子键合 离子强度 有机化学 材料科学 离子 和频产生 物理 非线性系统 非线性光学 催化作用 量子力学 共聚物
作者
Azhad U. Chowdhury,Graham J. Taylor,Vera Bocharova,Robert L. Sacci,Yingdong Luo,William T. McClintic,Ying‐Zhong Ma,Stephen A. Sarles,Kunlun Hong,C. Patrick Collier,Benjamin Doughty
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:142 (1): 290-299 被引量:39
标识
DOI:10.1021/jacs.9b10536
摘要

Polymer-stabilized liquid/liquid interfaces are an important and growing class of bioinspired materials that combine the structural and functional capabilities of advanced synthetic materials with naturally evolved biophysical systems. These platforms have the potential to serve as selective membranes for chemical separations and molecular sequencers and to even mimic neuromorphic computing elements. Despite the diversity in function, basic insight into the assembly of well-defined amphiphilic polymers to form functional structures remains elusive, which hinders the continued development of these technologies. In this work, we provide new mechanistic insight into the assembly of an amphiphilic polymer-stabilized oil/aqueous interface, in which the headgroups consist of positively charged methylimidazolium ionic liquids, and the tails are short, monodisperse oligodimethylsiloxanes covalently attached to the headgroups. We demonstrate using vibrational sum frequency generation spectroscopy and pendant drop tensiometery that the composition of the bulk aqueous phase, particularly the ionic strength, dictates the kinetics and structures of the amphiphiles in the organic phase as they decorate the interface. These results show that H-bonding and electrostatic interactions taking place in the aqueous phase bias the grafted oligomer conformations that are adopted in the neighboring oil phase. The kinetics of self-assembly were ionic strength dependent and found to be surprisingly slow, being composed of distinct regimes where molecules adsorb and reorient on relatively fast time scales, but where conformational sampling and frustrated packing takes place over longer time scales. These results set the stage for understanding related chemical phenomena of bioinspired materials in diverse technological and fundamental scientific fields and provide a solid physical foundation on which to design new functional interfaces.
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