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The Ultrasonic/Shear-Force Microscope: Integrating Ultrasonic Sensing into a Near-Field Scanning Optical Microscope

机译:超声波/剪切力显微镜:将超声波感应集成到近场扫描光学显微镜中

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摘要

An ultrasonic transducer is incorporated into a near-field scanning optical microscope (NSOM) to augment its versatility to characterize the properties of layers adsorbed to a sampleu27s surface. Working under typical NSOM operation conditions, the ultrasonic transducer--attached underneath the sample--demonstrates sufficient sensitivity to monitor the waves generated by the tapered NSOM probe that oscillates in the proximity of, and parallel to, the sampleu27s top surface. This capability makes the newly integrated ultrasonic/shear-force microscope a valuable diagnostic tool in the study of sliding friction and surface phenomena in general. Here, it is used to concurrently and independently monitor the effects that probe-sample interactions exert on the probe (that is attached to a piezoelectric tuning fork) and on the sample (that is attached to the ultrasonic transducer). The signal from the tuning fork (TF) constitutes the so called u22shear-forceu22 signal, widely used in NSOM as a feedback to control the probeu27s vertical position but whose working mechanism is not yet well understood. Tests involving repeated vertical z motion of the probe towards and away from the sampleu27s surface reveal that the TF and ultrasonic (US) signals have distinct z dependence. Additionally, where the TF signal showed abrupt changes during the approach, the US changed accordingly. A shift in the probeu27s resonance frequency that depends on the probe-sample distance is also observed through both the TF and the US responses. Within the sensitivity of the apparatus, ultrasonic signals were detected only at probe-sample distances where the probeu27s resonance frequency had shifted significantly. These measured signals are consistent with a probe entering and leaving a viscoelastic fluid-like film above the sample. The film acts as the medium where waves are generated and coupled to the ultrasonic sensor located beneath the sample. To our knowledge, this is the first reported use of ultrasonic detection for detailed monitoring of the distance dependence of probe-sample interactions, and provides direct evidence of sound as an energy dissipation channel in wear-free friction. This newly integrated ultrasonic/shear-force microscope, which can be implemented with any functionalized proximal probe (including aperture and apertureless NSOM), can become a valuable metrology tool in surface science and technology.
机译:将超声换能器结合到近场扫描光学显微镜(NSOM)中,以增强其多功能性,以表征吸附到样品表面的层的特性。超声换能器在典型的NSOM操作条件下工作,安装在样品下方,具有足够的灵敏度,可以监视由锥形NSOM探头产生的,在样品顶表面附近并与其平行振动的波。这种功能使新集成的超声波/剪切力显微镜成为研究滑动摩擦和表面现象的重要诊断工具。在此,它用于同时并独立地监视探针-样品相互作用对探针(连接到压电音叉)和样品(连接到超声换能器)的影响。来自音叉(TF)的信号构成了所谓的“剪切力”信号,在NSOM中广泛用作反馈,以控制探头的垂直位置,但其工作机理尚未得到很好的理解。涉及探针朝向和远离样品表面的重复垂直z运动的测试表明,TF和超声(US)信号具有明显的z依赖性。此外,在进近过程中TF信号显示突然变化的地方,美国也相应地变化了。通过TF和US响应,还可以观察到取决于探针样本距离的探针共振频率的变化。在仪器的灵敏度范围内,仅在探针的共振频率发生了明显偏移的探针-样本距离处检测到超声波信号。这些测得的信号与探针进入和离开样品上方的粘弹性流体状薄膜一致。薄膜充当产生波的介质,并耦合到位于样品下方的超声波传感器。据我们所知,这是首次报道将超声波检测用于详细监测探针-样品相互作用的距离依赖性,并为声音作为无磨损摩擦中的能量消散通道提供了直接证据。这种新近集成的超声/剪切力显微镜可以与任何功能化的近端探头(包括孔径和无孔径NSOM)一起使用,可以成为表面科学和技术中一种有价值的计量工具。

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