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High frequency-bandwidth optical technique to measure thermal elongation time responses of near-field scanning optical microscopy probes

机译:高频带宽光学技术测量近场扫描光学显微镜探针的热延伸时间响应

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摘要

A near-field scanning optical microscopy (NSOM) probe elongates when light is coupled into it. The time response of this thermal process is measured here by a new optical technique that exploits the typical flat-apex morphology of the probe as a mirror in a Fabry-Perot type cavity. Pulsed laser light is coupled into the probe to heat up the tip, while another continuous wave laser serves to monitor the elongation from the interference pattern established by the reflections from the flat-apex probe and a semitransparent metal-coated flat sample. A quarter wave plate is introduced into the interferometer optical path in order to maximize the signal to noise level, thus allowing the elongation of the tip to be monitored in real time. This optical technique, unlike other methods based on electronic feedback response, avoids limited frequency bandwidth restrictions. We have measured response time constants of 500 and 40 µs. The technique presented here will help determine the power levels, operating probe-sample distance, and pulse repetition rate requirements for safe operation of NSOM instrumentation. In addition to NSOM, the instrumentation described in this article could also impact other areas that require large working range, accuracy, and high-speed response.
机译:当光耦合到其中时,近场扫描光学显微镜(NSOM)探针会伸长。在此,通过一种新的光学技术来测量该热过程的时间响应,该技术利用探针的典型平顶形态来作为Fabry-Perot型腔中的反射镜。脉冲激光耦合到探头中以加热尖端,而另一种连续波激光器则用于监视由平顶探头和半透明金属涂层平样品的反射所建立的干涉图样的伸长。将四分之一波片引入干涉仪的光路中,以最大程度地提高信噪比,从而可以实时监测尖端的伸长。与其他基于电子反馈响应的方法不同,该光学技术避免了有限的带宽限制。我们测得的响应时间常数为500和40 µs。此处介绍的技术将有助于确定功率水平,操作探针样本的距离以及对NSOM仪器进行安全操作所需的脉冲重复频率。除NSOM以外,本文中介绍的仪器还可能会影响需要较大工作范围,准确性和高速响应的其他领域。

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