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Scanning near-field optical microscope based on double-resonant fiber probe montage and its operation in liquids

机译:基于双谐振纤维探头蒙太奇的扫描近场光学显微镜及其在液体中的操作

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The operation of the scanning near-field optical microscope based on the double-resonant montage of a fiber probe onto the tuning fork (working frequency of the latter, that is 32 kHz, coincides with the second resonance frequency of the bending oscillations of the free standing part of a fiber beam) in liquid is reported. It is shown that due to the peculiarities of the probe montage (initially large, around 3,000 - 5,500 quality factor of the dithering and long projection of the fiber beam beyond the tuning fork body) and microscope electronics, this SNOM is very fit to work in liquids. Quality factor of the sensor drops down to the values around 300 - 600 when the probe tip is submerged on the depth of 0.2 - 0.3 mm, thus remaining large enough to enable high quality imaging with rather small acting force value laying in the subnanoNewton region. We also discuss the joint liquid recipient construction which connects the liquid cell containing a sample with the large water reservoir via a flexible tube. This reservoir is placed onto separate Z-stage and hence the water level in the cell can be regulated independently from the sample position which facilitates the SNOM operation a lot.
机译:扫描近场光学显微镜的操作基于纤维探针的双谐振蒙太奇在调谐叉上(后者的工作频率,即32kHz,与自由弯曲振荡的第二谐振频率一致据报道,纤维梁的站立部分。结果表明,由于探针蒙太奇的特点(最初大,大约3,000 - 5,500个质量因子的抖动和长度的纤维梁超出调谐叉体的光束)和显微镜电子设备,这款SnOM非常适合工作液体。当探针尖端浸没在0.2-0.3mm的深度时,传感器的质量因子下降到约300-600左右的值,从而保持足够大以使高质量的成像与铺设在亚纳尼夸顿区域中的相当小的作用力值。我们还讨论了通过柔性管将含有样品的液体电池连接液体,该接合液体受体结构通过柔性管将含有大的水库的液体电池。将该贮存器置于单独的Z-阶段上,因此可以独立于促进SnOM操作的样本位置来调节电池中的水位。

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