ENGINEERING RESEARCH EQUIPMENT: A Combined Fluorescence Optical Microscope/Non-Contact Atomic Force Microscope for Monolayer and Multilayer Studies
ENGINEERING RESEARCH EQUIPMENT: A Combined Fluorescence Optical Microscope/Non-Contact Atomic Force Microscope for Monolayer and Multilayer Studies
批准号:
9622506
负责人:
Joseph Zasadzinski
金额:
$5.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-05-15 至 1998-04-30
中文摘要
9622506 Zasadzinski扫描探头显微镜的新成像模式--非接触、轻敲、摩擦或侧向力模式--使OSEO以前难以或不可能成像的各种表面成为可能。这些新的成像模式利用表面化学、摩擦、顺应性、电荷等方面的变化,除了简单的表面形貌外,还可以产生图像对比度。对于这些模式中的许多模式,原子力显微镜针尖要么不与样品表面接触,要么被轻轻敲击在样品表面上。因此,与传统的接触模式AFM相比,可以成像更柔软的表面,并且不会有重新排列松散支撑材料的倾向。建议通过购买纳米多模原子力显微镜和必要的附件来升级现有的接触式原子力显微镜,以进行非接触和敲击模式的成像。这些新的成像模式将应用于正在进行的表面活性物质、脂肪和蛋白质的自组装和图案形成的研究。事实证明,这些新的成像模式在研究复杂的流体界面、表面活性剂、蛋白质和聚合物的吸附、膜中的横向相分离、蛋白质的定位和扩散、自组装膜的动力学和结构等方面非常有用。这种新的设备还将使我们能够表征更真实的模型膜表面,用于使用表面力设备进行力测量。为了完全实现新的成像模式,在使用AFM之前,有必要识别表面上的感兴趣区域。最好的方法是将AFM连接到能够进行荧光成像的高分辨率光学显微镜上。荧光显微镜是在微米级识别脂结构域、特定蛋白质(通过抗体标记)、吸附等的最佳方法之一。将荧光图像与分子分辨率AFM图像直接关联将是一大进步。最近建造了一种定制的荧光显微镜,用于检查空气-水界面的单分子层。在AFM成像之前和期间,可以建造一个非常类似的仪器来检查衬底上的薄膜。有了这种综合能力,首席研究人员应该能够定位蛋白质、相界等,并将它们与它们对双分子层性质的宏观影响相关联。还可以研究各种脂类混合物在空气-水界面形成的自发图案向用作平版模板的衬底的转移,吸附物种混合物的竞争性自组装形成的图案,以及表面矿化的初始阶段。***
英文摘要
9622506 Zasadzinski New modes of imaging with scanning probe microscopes - non-contact, tapping, and friction or lateral force modes - have made it possible to image a variety of surfaces that had previously been difficult or impossible to OseeO. These new imaging modes take advantage of variations in surface chemistry, friction, compliance, charge, etc. to develop image contrast in addition to simple surface topography. For many of these modes, the AFM tip is either not in contact with or is gently tapped on the sample surface. Hence, much softer surfaces can be imaged than with conventional contact mode AFM and there is less tendency to rearrange loosely supported materials. It is proposed to upgrade the current contact mode AFM by purchasing a Nanoscope Multimode AFM and the necessary accessories to do non-contact and tapping mode imaging. These new imaging modalities will be applied to the ongoing studies of self-assembly and pattern formation in surfactant, lipid and proteins. These new imaging modes are proving to be extremely useful in examining complex fluid interfaces, surfactant, protein, and polymer adsorption, lateral phase separation in membranes, protein localization and diffusion, the kinetics and structures of self-assembled films, etc. This new apparatus will also allow us to characterize more realistic model membrane surfaces for force measurements with the Surface Forces Apparatus. To fully implement the new imaging modes, it is necessary to identify areas of interest on the surface prior to engaging the AFM. The best way to do this is by coupling the AFM to a high resolution optical microscope capable of fluorescence imaging. Fluorescence microscopy is one of the best ways of identifying lipid domains, specific proteins (via antibody labeling), adsorption etc. at the micron level. It would be a major advance to directly correlate the fluorescence images with molecular resolution AFM images. A custom fluorescence microscope has recently been built for examin ing monolayers at the air-water interface. A very similar instrument can be constructed to examine thin films on substrates prior to and during AFM imaging. With this combined capability, the principal investigator should be able to localize proteins, phase boundaries, etc. and correlate them with their macroscopic effects on bilayer properties. The transfer of the spontaneous patterns formed by various lipid mixtures at the air-water interface to substrates to be used as lithographic-style templates, the patterns formed by competitive self-assembly of mixtures of adsorbing species, and the initial stages of mineralization of surfaces, can also be studied. ***
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Effects of Curvature on Monolayer Morphology and Dynamics
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批准号:1706378
-
项目类别:Standard Grant
-
资助金额:$37.0万
-
财政年份:2017
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负责人:Joseph Zasadzinski
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依托单位:
Collaborative Research in Nanostructure Control via Surfactant Mixing and Polymerization
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批准号:0436124
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项目类别:Standard Grant
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资助金额:$16.05万
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财政年份:2005
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负责人:Joseph Zasadzinski
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依托单位:
Acquisition of a High Vacuum Freeze-Fracture System for Microstructural Characterization of Complex Fluids and Biomaterials
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批准号:9802591
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项目类别:Standard Grant
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资助金额:$10.0万
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财政年份:1998
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负责人:Joseph Zasadzinski
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依托单位:
Engineering Research Equipment: A Modified STM/AFM for Complex Fluid Investigations
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批准号:9212790
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项目类别:Standard Grant
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资助金额:$3.56万
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财政年份:1992
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负责人:Joseph Zasadzinski
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依托单位:
Presidential Young Investigator Award: Surfactant Solution Properties and Fluid Microstructure
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批准号:8657444
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项目类别:Continuing Grant
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资助金额:$31.2万
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财政年份:1987
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负责人:Joseph Zasadzinski
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依托单位:
Acquisition of an Electron Microscope (Materials Research)
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批准号:8719771
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项目类别:Standard Grant
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资助金额:$7.5万
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财政年份:1987
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负责人:Joseph Zasadzinski
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依托单位:
国内基金
海外基金
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