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利用 NMR 弛豫和原子分子动力学模拟研究球形和棒状烷氧基乙氧基表面活性剂胶束的结构和动力学。

Structure and Dynamics of Spherical and Rodlike Alkyl Ethoxylate Surfactant Micelles Investigated Using NMR Relaxation and Atomistic Molecular Dynamics Simulations.

机构信息

Department of Chemistry , University of Cincinnati , Cincinnati , Ohio 45221 , United States.

Corporate Research & Development , The Procter & Gamble Company , Mason , Ohio 45040 , United States.

出版信息

Langmuir. 2019 Oct 29;35(43):13880-13892. doi: 10.1021/acs.langmuir.9b01345. Epub 2019 Oct 15.

DOI:10.1021/acs.langmuir.9b01345
PMID:31573205
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10552554/
Abstract

Predicting and controlling the properties of amphiphile aggregate mixtures require understanding the arrangements and dynamics of the constituent molecules. To explore these topics, we study molecular arrangements and dynamics in alkyl ethoxylate nonionic surfactant micelles by combining NMR relaxation measurements with large-scale atomistic molecular dynamics simulations. We calculate parameters that determine relaxation rates directly from simulated trajectories, without introducing specific functional forms to describe the dynamics. NMR relaxation rates, which depend on relative motions of interacting atom pairs, are influenced by wide distributions of dynamic time scales. We find that relative motions of neighboring atom pairs are rapid and liquidlike but are subject to structural constraints imposed by micelle morphology. Relative motions of distant atom pairs are slower than nearby atom pairs because changes in distances and angles are smaller when the moving atoms are further apart. Large numbers of atom pairs undergoing these slow relative motions contribute to predominantly negative cross-relaxation rates. For spherical micelles, but not for cylindrical micelles, cross-relaxation rates are positive only for surfactant tail atoms connected to the hydrophilic headgroup. This effect is related to the lower packing density of these atoms at the hydrophilic-hydrophobic boundary in spherical vs cylindrical arrangements, with correspondingly rapid and less constrained motion of atoms at the boundary.

摘要

预测和控制两亲物聚集混合物的性质需要了解组成分子的排列和动力学。为了探索这些主题,我们通过将 NMR 弛豫测量与大规模原子分子动力学模拟相结合,研究了烷基乙氧基非离子表面活性剂胶束中的分子排列和动力学。我们从模拟轨迹中直接计算确定弛豫率的参数,而不引入特定的函数形式来描述动力学。依赖于相互作用原子对相对运动的 NMR 弛豫率受到广泛分布的动态时间尺度的影响。我们发现,相邻原子对的相对运动是快速的,类似于液体,但受到胶束形态施加的结构约束。远距离原子对的相对运动比附近原子对慢,因为当移动的原子相距更远时,距离和角度的变化较小。大量经历这些缓慢相对运动的原子对导致主要为负的交叉弛豫率。对于球形胶束,但不是对于圆柱形胶束,只有与亲水头基相连的表面活性剂尾原子的交叉弛豫率为正。这种效应与球形与圆柱形排列相比,这些原子在亲水头基-疏水头基边界处的较低堆积密度有关,相应地,边界处的原子运动更快且受到的约束更小。

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