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OPTICAL DETECTION OF ULTRASOUND USING AN APERTURELESS NEAR-FIELD SCANNING OPTICAL MICROSCOPY SYSTEM

机译:使用不可取的近场扫描光学显微镜系统进行超声波检测超声波检测

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Laser ultrasonics techniques are power approaches for non-contact generation and detection of high frequency ultrasound on a local scale. In these techniques, optical diffraction limits the spatial information that can be accessed from a measurement. In order to improve the lateral spatial resolution, we incorporate an apertureless near-field scanning optical microscope (aNSOM) into laser ultrasonics setup for local detection of laser generated ultrasound. The aNSOM technique relies on the measurement of a weak backscattered near-field light intensity resulting from the oblique illumination of a nanoscale probe-tip positioned close to a sample surface. We enhance the optical near-field intensity by coupling light to surface plasmon polaritons (SPPs) on the shaft of an atomic force microscopy (AFM) cantilever. The SPPs propagate down the AFM shaft, localize at the tip apex, and are backscattered to the far-field when the separation distance between the probe tip and the sample surface is comparable to the probe-tip radius. The backscattered near-field intensity is dynamically modulated when an ultrasonic wave arrives at the sample surface leading to a transient change in the tip-sample separation distance. We present experimental results detailing measurement of broadband and narrowband laser generated ultrasound in solids with frequencies reaching up to 180 MHz range.
机译:激光超声波技术是在本地规模上的非接触生成和检测高频超声波的功率方法。在这些技术中,光衍射限制了可以从测量访问的空间信息。为了提高横向空间分辨率,我们将不可取的近场扫描光学显微镜(ANSOM)纳入激光超声器设置,以便局部检测激光产生的超声波。 ANSOM技术依赖于测量由靠近样品表面的倾斜照射倾斜照射而导致的弱背散射近场光强度。我们通过在原子力显微镜(AFM)悬臂(AFM)悬臂的轴上通过耦合到表面等离子体(SPP)来增强光学近场强度。 SPP向下传播在AFM轴上,在尖端顶点定位,当探针尖端和样品表面之间的分离距离与探头半径相当时,将其反向散射到远场。当超声波到达样品表面时动态地调制后散射近场强度,导致尖端样本分离距离的瞬态变化。我们提出了实验结果,详细测量宽带和窄带激光器在固体中产生的超声,频率达到高达180 MHz范围。

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