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Light scattering by ultrasonically-controlled small particles: system design, calibration, and measurement results

机译:超声波控制的小颗粒的光散射:系统设计,校准和测量结果

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We present the design of a novel scatterometer for precise measurement of the angular Mueller matrix profile of a mm- to μm-sized sample held in place by sound. The scatterometer comprises a tunable multimode Argon-krypton laser (with possibility to set 1 of the 12 wavelengths in visible range), linear polarizers, a reference photomultiplier tube (PMT) for monitoring the beam intensity, and a micro-PMT module mounted radially towards the sample at an adjustable radius. The measurement angle is controlled by a motor-driven rotation stage with an accuracy of 15'. The system is fully automated using LabVIEW, including the FPGA-based data acquisition and the instrument's user interface. The calibration protocol ensures accurate measurements by using a control sphere sample (diameter 3 mm, refractive index of 1.5) fixed first on a static holder followed by accurate multi-wavelength measurements of the same sample levitated ultrasonically. To demonstrate performance of the scatterometer, we conducted detailed measurements of light scattered by a particle derived from the Chelyabinsk meteorite, as well as planetary analogue materials. The measurements are the first of this kind, since they are obtained using controlled spectral angular scattering including linear polarization effects, for arbitrary shaped objects. Thus, our novel approach permits a non-destructive, disturbance-free measurement with control of the orientation and location of the scattering object.
机译:我们提出了一种新型散射仪的设计,用于精确测量通过声音固定在毫米至微米大小的样品的角度Mueller矩阵轮廓。散射仪包括可调多模氩-激光器(可以将12个波长中的1个设置在可见光范围内),线性偏振器,用于监视光束强度的参考光电倍增管(PMT),以及径向朝着径向方向安装的微型PMT模块半径可调的样品。测量角度由电动旋转平台控制,精度为15'。该系统使用LabVIEW完全自动化,包括基于FPGA的数据采集和仪器的用户界面。校准方案通过使用首先固定在静态支架上的控制球样品(直径3 mm,折射率为1.5)来确保精确测量,然后对超声悬浮的同一样品进行精确的多波长测量。为了演示散射仪的性能,我们对车里雅宾斯克陨石和行星类似物衍生的粒子散射的光进行了详细的测量。测量是此类中的第一个,因为它们是使用可控制的光谱角散射(包括线性偏振效应)获得的,用于任意形状的物体。因此,我们的新颖方法允许在控制散射物体的方向和位置的情况下进行无损,无干扰的测量。

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