首页> 外文会议>Conference on ultrafast phenomena and nanophotonics >FAR-FIELD SUPER RESOLUTION MICROSCOPY BASED ON THE NONLINEAR RESPONSE OF PHOTO-THERMAL EXCITATION
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FAR-FIELD SUPER RESOLUTION MICROSCOPY BASED ON THE NONLINEAR RESPONSE OF PHOTO-THERMAL EXCITATION

机译:基于光热激励的非线性响应的远场超分辨率显微镜

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Far field Super resolution (SR) microscopy, based on the emission of label fluorescent molecules, has become an important tool in life sciences. We present a new, label free, far field SR scheme, aimed towards material science, which is based on ultrafast, nonlinear excitation of materials to non-equilibrium state. In a pump-probe scheme, we optically excite a spatial temperature profile throughout the diffraction limited spot, and probe the material with an overlapping beam. Due to nonlinearities in thermal properties, we demonstrate enhancement of at least x2 better than the diffraction limit. Our approach can be extended to include other temperature dependent physical properties such as Raman scattering, reflection/absorption edge or luminescence. The method is suitable to characterize semiconductor and optoelectronic systems in vacuum, ambient, and liquid, semi-transparent and opaque systems, ultrathin and thick samples alike. In this communication we present the method and discuss some major physical consideration and experimental aspects of its application. We focus the discussion on ultrafast dynamic and thermal properties. We also discuss the applicability of the method in the unique case of VO_2 where photo-induced phase transition provides the contrast and present a highly accurate optical edge detection method based on the modulation phase.
机译:远场超分辨率(SR)显微镜,基于标签荧光分子的发射,已成为生命科学的重要工具。我们展示了一种新的免费标签,远地SR方案,旨在实现材料科学,该科学基于超快的材料对非平衡状态的非线性激励。在泵探针方案中,我们光学激发整个衍射限制点的空间温度曲线,并用重叠光束探测材料。由于热性质中的非线性,我们证明了比衍射极限更好地提高X2。我们的方法可以扩展到包括其他温度相关的物理性质,例如拉曼散射,反射/吸收边缘或发光。该方法适用于真空,环境和液体,半透明和不透明系统,超薄和厚样品中的半导体和光电系统。在此通信中,我们介绍了该方法并讨论了其应用的一些主要的物理考虑和实验方面。我们专注于超快动态和热性能的讨论。我们还讨论了该方法在vo_2的独特情况下的适用性,其中光诱导的相位转变提供对比度并呈现基于调制阶段的高精度光学边缘检测方法。

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