Controlling Ionomer Morphologies
Controlling Ionomer Morphologies
批准号:
0235106
负责人:
Karen Winey
金额:
$30.9万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-11-01 至 2006-04-30
中文摘要
拟议的研究将调查的形态含离子的聚合物,特别是离聚物,使用模型材料和各种分析电子显微镜(AEM)的方法。 离聚物是具有大部分非极性单体单元和少数(约5-10摩尔%)极性单体单元(通常为酸,例如-COOH)的无规共聚物。 酸基团可以用阳离子中和以产生离子物质,例如在Na-中和的羧酸的情况下的-COO-Na+。 由于这些离子物质比周围基质的极性大得多,因此存在离子物质微相分离并形成离子聚集体的驱动力,尽管离子聚集体的所得形态尚未得到很好的理解。 控制离聚物的形态是拟议研究的主要目标,也是开发这些材料的预测理论模型和对其结构-性能关系的强大理解的第一步。 这些离子聚集体作为物理交联剂来增韧聚合物,并导致当前的工业应用(耐化学性热塑性塑料、坚韧涂层、用于燃料电池的选择性渗透膜和食品包装材料)和各种潜在的技术应用(例如,防止化学战)。 这些复杂的聚合物材料激发了科学兴趣,因为(1)这些两亲性材料具有模拟生物大分子的离子相互作用,(2)离聚物易于获得,具有丰富的化学性质,包括无定形和半结晶聚合物以及一系列阳离子,以及(3)高分辨率分析工具现在可用于研究化学,加工,形态和性能的相互依赖性。 Winey自1998年以来对离聚物的扫描透射电子显微镜(STEM)研究为拟议的研究提供了有价值的基础,Winey致力于确定对离聚物形态影响最大的材料参数和加工条件。 拟议的工作旨在揭示可靠的趋势,在离聚物形态,以提供这些复杂的材料的基本理解。 由于Winey确定了各种材料和工艺参数如何影响离聚物形态,因此他们将能够控制离聚物形态。 拟议实验计划的两个特点是(1)使用模型材料,即旨在解决特定科学问题的材料,以及(2)使用多种表征工具,包括SAXS,FT-IR,特别是一系列分析电子显微镜(AEM)方法。 工业、学术和军事科学家对含离子聚合物的研究和聚合物的AEM表征工具的开发都有科学兴趣。 Winey将与利哈伊显微镜学校合作,以确保电子显微镜工作者充分利用拟议工作中使用的AEM方法来研究复杂的化学非均质聚合物材料。 此外,Winey将继续担任宾夕法尼亚大学校园女性工程师协会的教师联合顾问,并举办关于工程研究生学习和学术生涯机会的年度小组会议。
英文摘要
The proposed research will investigate the morphology of ion-containing polymers, in particular ionomers, using model materials and a variety of analytical electron microscopy (AEM) methods. Ionomers are random copolymers with a majority of non-polar monomeric units and a minority (~5-10 mol%) of polar monomeric units, typically acids such as -COOH. The acid groups can be neutralized with cations to create ionic species such as -COO-Na+ in the case of a Na-neutralized carboxylic acid. Because these ionic species are considerably more polar that the surrounding matrix, there is a driving force for the ionic species to microphase separate and form ionic aggregates although the resulting morphologies of ionic aggregates are not well understood. Controlling the morphologies of ionomers is the primary goal of the proposed research and the first step to developing both a predictive theoretical model of these materials and a robust understanding of their structure-property relationships. These ionic aggregates act as physical crosslinks to toughen the polymer and lead to both current industrial applications (chemically resistant thermoplastics, tough coatings, permselective membranes for fuel cells, and food packaging materials) and a variety of potential technological applications (e.g. protection against chemical warfare). These complex polymeric materials spur scientific interest, because (1) these amphiphilic materials have ionic interactions that mimic biological macromolecules, (2) ionomers are readily available with a wealth of chemistries that includes amorphous and semicrystalline polymers and a range of cations, and (3) high-resolution analytical tools are now available to investigate the interdependencies of chemistry, processing, morphology and properties. Winey's scanning transmission electron microscopy (STEM) studies of ionomers since 1998 provide a valuable foundation to the proposed research in which Winey endeavors to identify the materials parameters and processing conditions that have the most substantial influence on the ionomer morphologies. The proposed work seeks to uncover reliable trends in the ionomer morphology in order to provide fundamental understanding of these complex materials. As Winey determines how the various materials and processing parameters influence the ionomer morphology they will be able to control the ionomer morphology. Two hallmarks of the proposed experimental plan are (1) the use of model materials, that is materials designed to address specific scientific questions, and (2) the use of multiple characterization tools including SAXS, FT-IR, and, in particular, a range of analytical electron microscopy (AEM) methods. Industrial, academic and military scientists have scientific interest in both the proposed research about ion-containing polymers and the development of AEM characterization tools for polymers. Winey will collaborate with the Lehigh Microscopy School to ensure that electron microscopists take full advantage of the AEM methods that are used within the proposed work to investigate complex, chemically heterogeneous polymeric materials. In addition, Winey will continue to both serve as a faculty co-advisor to the Society of Women Engineers on Penn's campus and hold an annual panel about opportunities for graduate studies and academic careers in engineering.
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会议论文
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资助金额:$52.0万
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Material World Network: Dynamics in Polymer Nanocomposites Containing Hard, Soft and Mobile Nanoparticles
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资助金额:$52.0万
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财政年份:2012
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依托单位:
Precise Acid Copolymers and Ionomers: Morphology, Dynamics and Mechanical Properties
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批准号:1103858
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财政年份:2011
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依托单位:
2010 Polymer Physics Gordon Research Conference; June 27-July 2, 2010; Hadley, MA
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依托单位:
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批准号:0908449
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项目类别:Continuing Grant
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资助金额:$48.0万
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财政年份:2009
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依托单位:
MRI: Acquisition of a Scanning Electron Microscope with In Situ Capabilities
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批准号:0722990
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项目类别:Standard Grant
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财政年份:2007
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负责人:Karen Winey
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依托单位:
Reconciling STEM and SAXS for Ionomer Morphologies
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批准号:0549116
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项目类别:Continuing Grant
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资助金额:$0.0万
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财政年份:2006
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依托单位:
U.S.-U.K. Cooperative Research: Universality of Defects in Layered Materials
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批准号:9904127
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项目类别:Standard Grant
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财政年份:1999
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依托单位:
Quantitative Imaging & Microanalysis of Nano-Aggregates in Styrenic Ionomers
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批准号:9906829
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项目类别:Continuing Grant
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资助金额:$24.9万
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财政年份:1999
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依托单位:
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批准号:9457997
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项目类别:Continuing Grant
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资助金额:$33.75万
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财政年份:1994
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依托单位:
The Effect of Monomer Sequence Distributions in Copolymers: Phase Behavior and Interfacial Properties
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项目类别:Continuing Grant
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资助金额:$8.0万
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财政年份:1993
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依托单位:
Undergraduate Laboratory In Polymer Science And Engineering
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项目类别:Standard Grant
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资助金额:$6.75万
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财政年份:1993
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资助金额:$6.14万
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财政年份:1993
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负责人:Karen Winey
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依托单位:
海外基金