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首页> 外文期刊>The Journal of Chemical Physics >Dipolar electrostatic energy effect on relaxation process of monolayers at air-water interface: Analysis of thermodynamics and kinetics
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Dipolar electrostatic energy effect on relaxation process of monolayers at air-water interface: Analysis of thermodynamics and kinetics

机译:偶极静电能对气-水界面单层弛豫过程的影响:热力学和动力学分析

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摘要

In order to understand the effect of electrostatic energy on phase transition from monolayer to multilayer, isobaric relaxation process of Langmuir monolayers composed of stearic acid or ferroelectric polyvinylidene fluoride and trifluoroethylene copolymer with various vinylidene fluoride (VDF) ratios is investigated in terms of thermodynamic and kinetic analysis. A monotonous decreasing tendency of material loss with respect to temperature is observed for stearic acid monolayer, which is due to thermal activation effect on phase transition from monolayer to multilayer. In contrast, for the ferroelectric monolayer it presents a nonmonotonous behavior of losing materials with a peak position near the Curie temperature, which is not only owing to thermal activation but also dipole moment change. This observation is confirmed for the copolymer monolayers with other VDF content ratios. Amazingly, for the ferroelectric monolayers a good correspondence is found for critical temperatures evaluated from several independent methods including the analysis on slow collapse. This finding again tells the fact that the relaxation process, namely phase transition from monolayer to multilayer, is greatly influenced by dipolar electrostatic energy. Moreover, the study of time dependent relaxation process reveals a diffusionlike behavior of multilayer structure formation, which cannot be interpreted by classical models. Hence a new model based on diffusion-driven material transfer is proposed and diffusivity of the copolymer molecules is estimated with a value of 0.4×10~(-5) cm~2 / s. As a whole, this research reflects the importance of dipolar electrostatic energy for phase transition of monolayers at air-water interface.
机译:为了理解静电能对从单层到多层相变的影响,从热力学和动力学角度研究了由硬脂酸或铁电聚偏二氟乙烯和具有不同偏二氟乙烯(VDF)比例的三氟乙烯共聚物组成的Langmuir单层的等压松弛过程。分析。对于硬脂酸单层,观察到材料损失相对于温度的单调下降趋势,这是由于对从单层到多层的相变的热活化作用。相反,对于铁电单层,它表现出失去材料的非单调行为,其材料的峰值位置接近居里温度,这不仅是由于热激活,而且还因为偶极矩的变化。对于具有其他VDF含量比的共聚物单层,证实了该观察结果。令人惊讶的是,对于铁电单层,可以通过几种独立的方法(包括慢速崩塌分析)对临界温度进行评估,发现很好的对应关系。这一发现再次表明,弛豫过程,即从单层到多层的相变,受到偶极静电能的极大影响。此外,对时间相关弛豫过程的研究揭示了多层结构形成的类似扩散的行为,这是经典模型无法解释的。因此,提出了一种基于扩散驱动的材料转移的新模型,并估计共聚物分子的扩散率为0.4×10〜(-5)cm〜2 / s。总体而言,这项研究反映了偶极静电能对于空气-水界面单层相变的重要性。

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