Collaborative Research: Characterization of Functionally-Graded Sol-Gel-Derived Silica Films on Multiple Length Scales, from Single Molecules to Macroscopic Properties
Collaborative Research: Characterization of Functionally-Graded Sol-Gel-Derived Silica Films on Multiple Length Scales, from Single Molecules to Macroscopic Properties
批准号:
1404898
负责人:
Maryanne Collinson
金额:
$31.3万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-01 至 2019-03-31
中文摘要
非技术摘要开发先进技术的新材料通常需要合成大量不同的样品,并逐一进行测试,以找到最适合预期应用的样品。这种通常繁琐的过程的另一种选择是生产一种含有化学梯度的材料,在这种梯度中,成分沿着单个样品逐渐变化。因此,开发和识别最佳新材料的速度大大提高。这些化学梯度的快速筛选应用可能用于开发更好的催化剂,用于生产药品、塑料、润滑剂和燃料,以及制造具有粘附性的表面,以适应生物组织的附着和生长。化学梯度还可直接用于从复杂的化学混合物中分离特定组分,以及在微型化学设备和传感器中指导液体、化学前体和电池的输送。对于所有此类应用,所使用的梯度必须具有明确的化学和物理特性。理想情况下,它们将表现出从宏观到分子水平的渐变、单调的组成和性质变化。在现实中,这样的田园诗般的性格很少存在。在制备过程中,由于梯度组分的自发分离,可能会产生意想不到的性质变化,产生的材料表现出逐步而不是渐进的性质变化,并限制了经常希望的合作相互作用的参与。这些属性使得梯度材料比单一组分材料或由相同前驱体制备的均匀非梯度薄膜独特地更加复杂和有价值。这项活动强调探索由首席研究小组最近开发的新的湿化学方法制备的有机硅烷梯度的化学和物理复杂性。结果将导致梯度的开发具有更好的理解和更好的控制性能,可以在先进材料中更有效地实施。合作小组之间的协同作用将导致对不同的本科生和研究生进行最先进的材料合成和通过先进的化学成像方法表征它们的培训。这些学生将得到两名调查人员的积极指导,并将参加两个校区之间的暑期交流项目和每周一次的网络会议,以拓宽他们的教育、科学和职业视野。技术摘要在材料研究部固态和材料化学计划的支持下,主要研究人员将(1)调查沿溶胶-凝胶法制备的多组分有机硅烷梯度发生相分离和协同作用的程度,以及(2)评估所产生的区域的大小和组成。要研究的材料将包括来自不同有机烷氧基硅烷前体的多组分极性、酸度、电荷和掺杂剂梯度。从长远来看,将探索纳米到微米尺度的相分离和合作相互作用对这些梯度的宏观性质的影响。梯度组成将通过X射线光电子能谱、傅里叶变换红外光谱和拉曼图谱在多个长度尺度(微米到毫米)上进行表征。所有这三种方法都将产生距离尺度上的定量数据,梯度成分在不同的距离尺度上变化,并将允许充分了解任何合作效应的化学起源。单分子超局域化显微镜将被用来探测纳米尺度上的梯度,并阐明梯度成分本身以及探针分子与薄膜成分之间的协同作用。通过对薄膜的局部介电常数进行独特的单分子水平测量,将获得关于材料极性的定量数据。在所有情况下,来自梯度的结果将与来自均匀非梯度样本的结果进行比较。
英文摘要
Non-Technical AbstractThe development of new materials for advanced technologies usually requires that a large number of different samples be synthesized and tested one by one to find those best suited for the intended application. An alternative to this often-tedious process is to produce a material incorporating a chemical gradient in which the composition gradually varies along a single sample. The speed at which optimum new materials are developed and identified is thus greatly enhanced. These rapid-throughput-screening applications of chemical gradients find possible utility in the development of better catalysts for production of pharmaceuticals, plastics, lubricants and fuels and in the fabrication of surfaces with adhesion properties tailored for the attachment and growth of biological tissues. Chemical gradients also find direct utility in the separation of specific components from complex chemical mixtures and in guiding the delivery of liquids, chemical precursors and cells in miniaturized chemical devices and sensors. For all such applications, the gradients to be employed must have well defined chemical and physical properties. Ideally, they would exhibit gradual, monotonic compositional and properties variations extending from the macroscale down to molecule levels. In reality, such idyllic character seldom exists. Unexpected properties variations may arise from the spontaneous separation of the gradient components during preparation, producing materials that exhibit stepwise rather than gradual properties variations, and limit the participation of often-desirable cooperative interactions. These attributes make gradient materials uniquely more complex and valuable than either single component materials or uniform nongradient films prepared from identical precursors. This activity emphasizes exploration of the chemical and physical complexity of organosilane gradients prepared by novel wet-chemical methods recently developed by the principal investigator's groups. The outcomes will lead to development of gradients having better understood and better controlled properties that can be more effectively implemented in advanced materials. The synergy between the collaborating groups will lead to the enhanced training of a diverse body of undergraduate and graduate students in state-of-the-art materials synthesis and their characterization by advanced chemical imaging methods. These students will be actively mentored by both investigators and will participate in a summer exchange program between the two campuses and weekly web conferences to broaden their educational, scientific and career horizons. Technical AbstractWith the support from the Solid State and Materials Chemistry Program in the Division of Material Research, the principal investigators will (1) investigate the extent to which phase separation and synergistic interactions occur along multicomponent organosilane gradients prepared by the sol-gel process and (2) evaluate the sizes and compositions of the resulting domains. Materials to be investigated will include multicomponent polarity, acidity, charge and dopant gradients derived from different organoalkoxysilane precursors. Over the long term, the impacts of nanometer-to-micrometer scale phase separation and cooperative interactions on the macroscopic properties of these gradients will be explored. Gradient composition will be characterized on multiple length scales (micrometer-to-millimeter) by x-ray photoelectron spectroscopy, Fourier transform infrared spectroscopy and Raman mapping. All three will yield quantitative data on the distance scales over which gradient composition varies and will allow for the chemical origins of any cooperative effects to be fully understood. Single molecule superlocalization microscopy will be used to probe the gradients on nanometer length scales and to elucidate cooperative interactions between the gradient components themselves as well as between a probe molecule and the film components. Quantitative data on materials polarity will be obtained through implementation of unique single molecule level measurements of the local dielectric constant of the films. In all cases, results from the gradients will be compared to those from uniform nongradient samples.
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Improving the LC Separation of Biomolecule Mixtures using Novel Mixed-Mode Gradient Stationary Phases
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批准号:2305102
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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:2023
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负责人:Maryanne Collinson
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Collaborative Research: Fabrication and Optimization of Continuous Stationary Phase Gradients for Liquid Chromatography
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批准号:1609449
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资助金额:$44.9万
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财政年份:2016
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负责人:Maryanne Collinson
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GOALI: Collaborative Research: Next generation 2D-LC with greatly improved quantitative performance: Innovations in hardware, software, and methodology
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批准号:1507332
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项目类别:Standard Grant
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资助金额:$40.67万
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财政年份:2015
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负责人:Maryanne Collinson
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依托单位:
High Surface Area Nanostructured Materials for Chemical Analysis
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批准号:0847613
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项目类别:Continuing Grant
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资助金额:$28.06万
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财政年份:2009
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负责人:Maryanne Collinson
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依托单位:
Collaborative Research: New Routes for the Preparation and Characterization of Functionally-Grade and Mesoporous Silica Thin Films
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批准号:0648716
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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:2007
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负责人:Maryanne Collinson
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依托单位:
Enhancing the Performance and Applications of Sol-Gel Derived Materials via Template Based Strategies
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批准号:0618220
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项目类别:Continuing Grant
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资助金额:$37.0万
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财政年份:2005
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负责人:Maryanne Collinson
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依托单位:
Enhancing the Performance and Applications of Sol-Gel Derived Materials via Template Based Strategies
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批准号:0453707
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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:2005
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负责人:Maryanne Collinson
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依托单位:
Preparation and Characterization of Templated Sol-Gel Derived Materials
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批准号:0618221
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项目类别:Continuing Grant
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资助金额:$2.48万
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财政年份:2005
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负责人:Maryanne Collinson
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依托单位:
Research Experiences for Undergraduates in Chemistry at Kansas State University
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批准号:0097411
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项目类别:Continuing Grant
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资助金额:$14.0万
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财政年份:2001
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负责人:Maryanne Collinson
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依托单位:
Preparation and Characterization of Templated Sol-Gel Derived Materials
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批准号:0097102
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项目类别:Continuing Grant
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资助金额:$31.28万
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财政年份:2001
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负责人:Maryanne Collinson
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依托单位:
Electroanalytical Applications of Organically Modified Sol-Gel Materials
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批准号:9624813
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项目类别:Continuing Grant
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资助金额:$24.88万
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财政年份:1996
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负责人:Maryanne Collinson
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依托单位:
Intrazeolite Electron Transfer
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批准号:9510268
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项目类别:Standard Grant
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资助金额:$1.8万
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财政年份:1995
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负责人:Maryanne Collinson
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依托单位:
国内基金
海外基金
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