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Combined scanning probe nanotomography and optical microspectroscopy: A correlative technique for 3D characterization of nanomaterials

机译:组合扫描探针纳米断层扫描术和光学显微光谱:纳米材料3D表征的相关技术

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Combination of 3D structural analysis with optical characterization of the same sample area on the nanoscale is a highly demanded approach in nanophotonics, materials science, and quality control of nanomaterial. We have developed a correlative microscopy technique where the 3D structure of the sample is reconstructed on the nanoscale by means of a "slice-and- view" combination of ultramicrotomy and scanning probe microscopy (scanning probe nanotomography, SPNT), and its optical characteristics are analyzed using microspectroscopy. This approach has been used to determine the direct quantitative relationship of the 3D structural characteristics of nanovolumes of materials with their microscopic optical properties. This technique has been applied to 3D structural and optical characterization of a hybrid material consisting of cholesteric liquid crystals doped with fluorescent quantum dots (QDs) that can be used for photochemical patterning and image recording through the changes in the dissymmetry factor of the circular polarization of QD emission. The differences in the polarization images and fluorescent spectra of this hybrid material have proved to be correlated with the arrangement of the areas of homogeneous distribution and heterogeneous clustering of QDs. The reconstruction of the 3D nanostructure of the liquid crystal matrix in the areas of homogeneous QDs distribution has shown that QDs do not perturb the periodic planar texture of the cholesteric liquid crystal matrix, whereas QD clusters do perturb it. The combined microspectroscopy-nanotomography technique will be important for evaluating the effects of nanoparticles on the structural organization of organic and liquid crystal matrices and biomedical materials, as well as quality control of nanotechnology fabrication processes and products.
机译:在纳米光子学,材料科学和纳米材料的质量控制中,将3D结构分析与相同尺寸的样品纳米区域的光学表征相结合是一种非常需要的方法。我们已经开发了一种相关的显微镜技术,其中通过超薄切片术和扫描探针显微镜的“切片和视图”组合(扫描探针纳米断层扫描,SPNT)在纳米尺度上重建了样品的3D结构。使用显微光谱分析。该方法已被用于确定材料的纳米体积的3D结构特征与其微观光学性质的直接定量关系。该技术已应用于由掺有荧光量子点(QD)的胆甾型液晶组成的杂化材料的3D结构和光学表征,该杂化材料可通过改变圆偏振的不对称因子而用于光化学构图和图像记录。 QD发射。事实证明,这种杂化材料的偏振图像和荧光光谱的差异与量子点的均匀分布和异质聚集区域的排列有关。在均质QD分布区域中对液晶矩阵的3D纳米结构的重建表明,QD不会扰乱胆甾型液晶矩阵的周期性平面纹理,而QD簇却会扰乱它。显微光谱学-纳米断层照相术相结合的技术对于评估纳米颗粒对有机和液晶基质以及生物医学材料的结构组织的影响以及纳米技术制造过程和产品的质量控制具有重要意义。

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