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Chemical Sensors Based on Novel, Ultrathin Organic Coatings

Chemical Sensors Based on Novel, Ultrathin Organic Coatings
基于新型超薄有机涂层的化学传感器
批准号:
9818302
负责人:
Richard Crooks
金额:
$47.5万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-06-15 至 2003-05-31

项目摘要

项目成果

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中文摘要
翻译
该项目由德克萨斯A M大学的Richard Crooks教授进行,并由分析和表面化学计划资助,涉及设计,合成,表征和表面固定化新的有机材料,旨在作为阵列传感器中的化学敏感器件。 作为该提议的焦点的有机材料是超支化聚合物膜和树枝状聚合物。 基于树枝状单分子膜的气相化学传感器的特征在于表面声波质量平衡。 固定化膜的化学敏感性与树枝状结构的物理性质和预期设计相关,并且将追求实现所需化学选择性的迭代。 将在合作努力中探索使用这些薄膜阵列进行挥发性有机化合物测定。 一种组合化学方法来制备新的有机化合物用于传感器进行了探索,和一种新的手段,双层膜固定,保持选择性和保护表面免受毒害也pursued.The有用的化学传感器取决于传感器表面上的材料的特异性。 德克萨斯A M大学的Richard Crooks教授的这项工作开发了具有可预测特异性和更好反应的新型高度分支材料。 一种将材料连接到传感器表面的方法也正在开发中,该方法可以保护传感膜免受损坏和中毒。
英文摘要
This project, carried out by Professor Richard Crooks at Texas A&M University, and funded by the Analytical and Surface Chemistry Program, involves the design, synthesis, characterization, and surface immobilization of new organic materials intended to serve as chemically sensitive devices in array-based sensors. The organic materials that are the focus of this proposal are hyberbranched polymer films and dendritic polymers. Vapor phase chemical sensors based on dendritic monolayers are characterized by surface acoustic wave mass balances. The chemical sensitivities of the immobilized films are correlated with the physical properties and intended design of the dendritic structure, and an iteration to achieve the desired chemical selectivity will be pursued. Use of these thin films in arrays for volatile organic compound determinations will be explored in collaborative efforts. A combinatorial chemistry approach to the preparation of new organic compounds to be used for sensing is explored, and a novel means for bilayer film immobilization that preserves selectivity and protects the surface from poisoning is also pursued.The usefulness of chemical sensors depends on the specificity of the material on the surface of the sensor. This work by Professor Richard Crooks of Texas A&M University develops new highly branched materials with predictable specificities and better responses. A means to connect the material to the sensor surface that protects the sensing film from damage and poisoning is also being developed.
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