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Phase sensitive molecular dynamics of self-assembly glycolipid thin films: A dielectric spectroscopy investigation

机译:自组装糖脂薄膜的相敏分子动力学:介电谱研究

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Glycolipid, found commonly in membranes, is also a liquid crystal material which can self-assemble without the presence of a solvent. Here, the dielectric and conductivity properties of three synthetic glycolipid thin films in different thermotropic liquid crystal phases were investigated over a frequency and temperature range of (10~(-2)-10~6 Hz) and (303-463 K), respectively. The observed relaxation processes distinguish between the different phases (smectic A, columnar/hexagonal, and bicontinuous cubic Q) and the glycolipid molecular structures. Large dielectric responses were observed in the columnar and bicontinuous cubic phases of the longer branched alkyl chain glycolipids. Glycolipids with the shortest branched alkyl chain experience the most restricted self-assembly dynamic process over the broad temperature range studied compared to the longer ones. A high frequency dielectric absorption (Process I) was observed in all samples. This is related to the dynamics of the hydrogen bond network from the sugar group. An additional low-frequency mechanism (Process II) with a large dielectric strength was observed due to the internal dynamics of the self-assembly organization. Phase sensitive domain heterogeneity in the bicontinuous cubic phase was related to the diffusion of charge carriers. The microscopic features of charge hopping were modelled using the random walk scheme, and two charge carrier hopping lengths were estimated for two glycolipid systems. For Process I, the hopping length is comparable to the hydrogen bond and is related to the dynamics of the hydrogen bond network. Additionally, that for Process II is comparable to the bilayer spacing, hence confirming that this low-frequency mechanism is associated with the internal dynamics within the phase.
机译:膜中常见的糖脂也是一种液晶材料,可以在没有溶剂的情况下自组装。在此,分别在(10〜(-2)-10〜6 Hz)和(303-463 K)的频率和温度范围内研究了三种不同热致液晶相的合成糖脂薄膜的介电和电导特性。 。观察到的弛豫过程区分了不同的相(近晶A,柱状/六角形和双连续立方Q)和糖脂分子结构。在较长的支链烷基链糖脂的柱状和双连续立方相中观察到较大的介电响应。与更长的糖脂相比,在最宽的温度范围内,具有最短分支烷基链的糖脂经历的自组装动力学过程最受限制。在所有样品中均观察到高频介电吸收(过程I)。这与来自糖基团的氢键网络的动力学有关。由于自组装组织的内部动力学,还观察到了具有较大介电强度的另一种低频机制(过程II)。双连续立方相中的相敏域异质性与电荷载流子的扩散有关。使用随机游走方案对电荷跳跃的微观特征进行建模,并针对两个糖脂系统估算了两个电荷载流子跳跃长度。对于方法I,跳变长度与氢键相当,并且与氢键网络的动力学有关。此外,过程II的结果与双层间距相当,因此证实了这种低频机制与相内的内部动力学有关。

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