课题基金 / 基金详情

Ionomer Dynamics in Confinement: Fundamental Insights from Dielectric Spectroscopy

Ionomer Dynamics in Confinement: Fundamental Insights from Dielectric Spectroscopy
约束中的离聚物动力学:介电谱的基本见解
批准号:
1505953
负责人:
James Runt
金额:
$42.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-06-01 至 2018-05-31

项目摘要

项目成果

James Runt的其他基金

相似基金

相关文献

中文摘要
翻译
非技术总结:该项目将创造关于含离子聚合物材料中离子的动态特性和运动的知识,这将有助于理解和优化下一代电源和电化学设备。特别是,当这些材料的尺寸被限制在只有几纳米时,它们的性能将被探索。这项研究研究了含离子聚合物在被限制在多孔膜内时的性质变化方式,与散装材料相比。例如,有证据表明,一些聚合物分子将被吸收到孔表面(强客体/主体相互作用),导致聚合物运动显著减慢,离子电导率降低。当对孔隙进行化学处理以产生弱的客体/宿主相互作用时,这些表面效应可以被抵消,从而增强离子的导电性。这项工作的发现可能对未来电源和电化学器件的发展产生重大影响,特别是那些具有纳米特征尺寸的电源和电化学器件。在人力资源方面,本研究项目将为两名研究生创造学习机会。本科生也将通过宾夕法尼亚州立大学女性科学与工程(WISE)研究项目、高级论文项目以及宾夕法尼亚州立大学NSF-REU软材料项目的一部分有意义地参与。计划参与者将被鼓励参与外展活动,特别是那些与WISE研究所有关的活动。技术概述:这个项目的目标是一个重要的尚未开发的领域:纳米级限制对导电离聚体中离子传输的作用。离子在受限几何结构中的迁移是聚合物物理学中的一个重要课题,在含离子聚合物纳米结构器件的设计和加工中具有未来的实际意义。研究纳米尺度约束如何影响离子在离聚体中的离子传输的动机是为了了解当它们的尺寸被限制在几纳米的长度尺度时,它们的性质和性能是如何变化的。为此,本文提出了一种全面研究两种导电离聚体系统在圆柱形二氧化硅纳米孔中的分子动力学的方法。二氧化硅膜对这些实验特别有利,因为直径在4到10纳米范围内的孔可以很容易地实现。宿主膜和客体离聚体之间的强界面相互作用会导致动力学变慢,而纳米尺度上的空间限制会产生增强离子传输的相反效果。介电光谱是研究纳米多孔介质中聚合物动力学的理想工具,因为它能够在很宽的频率和温度范围内探测分子波动。离子偶极子在离聚体中的聚集对离子传导具有重要影响,特别是通过其对聚合物段动力学的影响,而聚合物段动力学通常与离子传输相耦合。限制对离子偶极子聚集的影响以前还没有被探讨过,但在本研究中有必要这样做,以提供对限制在分子动力学中的作用的完整理解。
英文摘要
NON-TECHNICAL SUMMARY:This project will create knowledge on the dynamic properties and the motions of ions in ion-containing polymeric materials, which will facilitate understanding and optimization of next-generation power sources and electrochemical devices. In particular, the performance of these materials will be explored when their dimensions are restricted to only a few nanometers. The research deals with the way the properties of ion-containing polymers change when confined inside porous membranes, in comparison to the bulk material. For example, there is evidence that some polymer molecules will be absorbed onto the pore surface (strong guest/host interaction) resulting in significant slowing of polymer motions and reduced ion conductivity. These surface effects can be negated when the pores are chemically treated to create weak guest/host interactions, resulting in enhanced ion conductivity. The findings of this work can have a significant impact on the future development of power sources and electrochemical devices, particularly those with nanometer feature sizes.In terms of human resources, this research project will create learning opportunities for two graduate students. Undergraduate students will also participate meaningfully, through the Penn State Women in Science and Engineering (WISE) Research program, senior thesis projects, and as part of the Penn State NSF-REU program on soft materials. Program participants will be encouraged to engage in outreach activities, particularly those connected with the WISE Institute.TECHNICAL SUMMARY:This project targets an important unexplored area: the role of nanoscale confinement on ion transport in conductive ionomers. The mobility of ionic species in confined geometries is an important topic in polymer physics and has future practical relevance in the design and processing of ion-containing polymer nanostructured devices. The motivation for investigating how nanoscale confinement influences ion transport in ionomers arises from the quest to understand how their properties and performance change as their dimensions are restricted to length scales of a few nanometers. To this end, a comprehensive investigation of the molecular dynamics of two conductive ionomer systems confined in cylindrical silica nanopores is proposed. Silica membranes are particularly advantageous for these experiments, as pores with diameters in the range of 4 to 10 nm can be readily achieved. Strong interfacial interactions between the host membrane and guest ionomer will lead to slower dynamics, while spatial restriction at the nanometer length scale can have the reverse effect of enhancing ion transport. Dielectric spectroscopy is an ideal tool to investigate the dynamics of polymers in nanoporous media owing to its ability to probe molecular fluctuations over a wide frequency and temperature range. Aggregation of ion dipoles in ionomers has important consequences for ion conduction, particularly through its influence on polymer segmental dynamics, which in turn is generally coupled with ion transport. The influence of confinement on ion dipole aggregation has not been explored previously, but it is essential to do so in this investigation to provide a complete understanding of the role of confinement on the molecular dynamics.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Dynamics of Precise Ethylene Copolymers and Ionomers Using Dielectric Spectroscopy
Molecular Dynamics of Oriented Elastomers and Crystalline Polymers Using Dielectric Spectroscopy
Dynamics of Polymer Mixtures: Intermolecular Coupling and Crystallizability
Structure and Dynamics of Polymer Blends Exhibiting Strong Intermolecular Interactions
国内基金
海外基金
β-arrestin2- MFN2-Mitochondrial Dynamics轴调控星形胶质细胞功能对抑郁症进程的影响及机制研究
  • 批准号:
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2023
  • 负责人:
  • 依托单位: