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Non-destructive Optical Testing of the Materials Surface Structure based on Liquid Crystals

机译:基于液晶的材料表面结构的无损光学测试

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Thin layers of nematic liquid crystals (NLCs) may be used as recording media for visualizing structural and microrelief defects, distribution of low power physical fields and modifications of the surface. NLCs are more sensitive in comparison with cholesteric and smectic LCs having super molecular structures. The detecting properties of NLCs are based on local layers deformation, induced by surface fields and observed in polarizing microscope. The structural surface defects or physical field's distribution are dramatically change the distribution of surface tension. Surface defects recording becomes possible if NLC deformed structure is illuminated in transparent or reflective modes and observed in optical polarizing microscope and appearing image is compared with background structure. In this case one observes not the real defect but the local deformation in NLCs. The theory was developed to find out the real size of defects. The resolution of NLC layer is more than 2000 lines/mm. The fields of NLC application are solid crystals symmetry, minerals, metals, semiconductors, polymers and glasses structure inhomogeneities and optical coatings defects detecting. The efficiency of NLC method in biophotonics is illustrated by objective detecting cancer tissues character and visualizing the interaction traces of grippe viruses with antibodies. NLCs may detect solvent components structure in tea, wine and perfume giving unique information of their structure. It presents diagnostic information alternative to dyes and fluorescence methods. For the first time the structures of some juices and beverages are visualized to illustrate the unique possibilities of NLCs.
机译:向列液晶(NLC)的薄层可以用作记录介质,以可视化结构和微浮雕缺陷,低功率物理场的分布以及表面的修饰。与具有超分子结构的胆甾型和近晶型LC相比,NLC更为敏感。 NLC的检测特性基于局部层变形,该变形是由表面场引起的,并在偏光显微镜下观察到。结构表面缺陷或物理场的分布会极大地改变表面张力的分布。如果将NLC变形结构以透明或反射模式照射并在光学偏光显微镜下观察,并将出现的图像与背景结构进行比较,则可以记录表面缺陷。在这种情况下,人们观察到的不是真正的缺陷,而是在NLC中的局部变形。开发该理论是为了找出缺陷的真实尺寸。 NLC层的分辨率大于2000线/ mm。 NLC的应用领域包括固体晶体对称性,矿物,金属,半导体,聚合物和玻璃结构不均匀性以及光学涂层缺陷检测。 NLC方法在生物光子学中的效率通过客观检测癌组织特征并可视化带状病毒与抗体的相互作用轨迹来说明。 NLC可以检测茶,酒和香水中的溶剂成分结构,从而提供其结构的独特信息。它提供了替代染料和荧光方法的诊断信息。首次将某些果汁和饮料的结构可视化,以说明NLC的独特可能性。

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