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Combined optical and acoustical method for determination of thickness and porosity of transparent organic layers below the ultra-thin film limit

机译:结合光学和声学方法测定厚度 超薄膜极限以下的透明有机层的孔隙率和孔隙率

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摘要

Analysis techniques are needed to determine the quantity and structure of materials composing an organic layer that is below an ultra-thin film limit and in a liquid environment. Neither optical nor acoustical techniques can independently distinguish between thickness and porosity of ultra-thin films due to parameter correlation. A combined optical and acoustical approach yields sufficient information to determine both thickness and porosity. We describe application of the combinatorial approach to measure single or multiple organic layers when the total layer thickness is small compared to the wavelength of the probing light. The instrumental setup allows for simultaneous in situ spectroscopic ellipsometry and quartz crystal microbalance dynamic measurements, and it is combined with a multiple-inlet fluid control system for different liquid solutions to be introduced during experiments. A virtual separation approach is implemented into our analysis scheme, differentiated by whether or not the organic adsorbate and liquid ambient densities are equal. The analysis scheme requires that the film be assumed transparent and rigid (non-viscoelastic). We present and discuss applications of our approach to studies of organic surfactant adsorption, self-assembled monolayer chemisorption, and multiple-layer target DNA sensor preparation and performance testing.
机译:需要分析技术来确定组成有机层的材料的数量和结构,该有机层的厚度低于超薄膜极限,并且处于液态环境。由于参数相关性,光学和声学技术都无法独立区分超薄膜的厚度和孔隙率。光学和声学相结合的方法可产生足够的信息来确定厚度和孔隙率。当总层厚度小于探测光的波长时,我们描述了组合方法在测量单个或多个有机层时的应用。该仪器设置允许同时进行原位光谱椭圆偏振法和石英晶体微量天平动态测量,并且它与多入口流体控制系统结合在一起,可在实验期间引入不同的液体溶液。我们的分析方案中采用了一种虚拟分离方法,以有机吸附物和液体环境密度是否相等来区分。分析方案要求薄膜被假定为透明且坚硬(非粘弹性)。我们介绍并讨论我们的方法在有机表面活性剂吸附,自组装单层化学吸附以及多层目标DNA传感器制备和性能测试中的应用。

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