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Thermoelastic modeling: application to super-resolution in photothermal and thermoelastic microscopy

机译:热弹性造型:在光热和热弹性显微镜中的超分辨率应用

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Photothermal and thermoelastic microscopies are nondestructive methods using optical excitation and detection. In photothermal microscopy, the photoreflectance is used to detect the dynamic component of the surface temperature. In our microscope, the normal component of the thermoelastic displacement is also detected with a laser probe, leading to thermoelastic images. Both methods are used to image surface and subsurface inhomogeneities of the investigated object. A thermoelastic model has been developed to calculate the temperature and the displacement fields in the bulk and at the surface of an isotropic solid. Modeling is applied to the case of limited size optical excitation, corresponding to super-resolution. Theoretical temperature profiles show that the resolution essentially depends on the radius of the excitation beam. Conversely, the thermoelastic displacement provides a lower resolution. Finally, experimental devices are presented. Some images of test samples are shown to place in evidence the different resolutions obtained with thermal and thermoelastic methods in the super-resolution case. An extrapolation of this study should allow to fix the values of the experimental parameters to optimize a microscope using a nanometer sized source.
机译:光热和热弹性显微镜是使用光学激励和检测的非破坏性方法。在光热显微镜检查中,光反射法用于检测表面温度的动态分量。在我们的显微镜中,也用激光探针检测热弹性位移的正常组分,导致热弹性图像。两种方法用于图像表面和所研究的对象的地下不均匀性。已经开发了一种热弹性模型来计算体积和各向同性固体表面的温度和位移场。建模应用于有限尺寸光学激发的情况,对应于超分辨率。理论温度分布表明,分辨率基本上取决于激发束的半径。相反,热弹性位移提供较低的分辨率。最后,提出了实验装置。测试样品的一些图像显示在证据上以超分辨率案例中的热和热弹性方法获得不同的分辨率。该研究的外推应允许固定实验参数的值以使用纳米尺寸的来源优化显微镜。

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