Fdtd analysis of nanoscale temperature distribution induced by near-Field photothermal effect

Shouhei Fukuyama, Y. Taguchi
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Abstract

We have developed a novel nanoscale patterning method of self-assembled monolayer (SAM) using near-field light. This method utilizes the thermal desorption of constituent molecules of a SAM (e.g. the desorption temperature of Octadecanethiol on Au is 130~230 o C) through the irradiation with near-field light, which can make noncontact and noncontaminating patterning of the SAM at nanoscale. In this paper, the near-field photothermal effect is numerically analyzed by the finite difference time domain (FDTD) method, and the electromagnetic field intensity and temperature distributions are estimated. The sample consists of Au thin film as a bonding layer with thiolated molecules of SAM, Ti thin film as an adhesion layer for Au, and SiO 2 substrate. In the analysis, the shape of the near-field optical fiber probe and the thickness of the thin film layer are considered. In the case of the thick Au layer with a double-tapered near-field optical fiber probe, the temperature of the fiber-tip becomes higher than that of Au surface. The strong heating of the probe tip causes a fatal damage of the coating metal of the fiber, therefore it is difficult to couple the high intensity laser into the near-field optical fiber probe in order to reach the desorption temperature. On the other hand, the desorption temperature can be achieved with the 10 nm-thick Au thin film. Moreover, in order to gain high optical intensity enhancements, the triple-tapered near-field optical fiber probe is utilized. Our simulations confirm extremely high temperature distribution on the sample surface by using the triple-tapered near-field optical fiber probe with 10 nm-thick Au thin film layer on 50 nm-thick
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近场光热效应诱导纳米尺度温度分布的Fdtd分析
我们开发了一种新的近场光自组装单层(SAM)纳米尺度图像化方法。该方法利用近场光照射对SAM的组分分子进行热解吸(例如十八烷硫醇在Au上的解吸温度为130~230℃),可以在纳米尺度上实现SAM的非接触、无污染图形化。本文采用时域有限差分(FDTD)方法对近场光热效应进行了数值分析,并估计了电磁场强度和温度分布。样品由Au薄膜作为与硫代SAM分子的键合层,Ti薄膜作为Au的粘附层和sio2衬底组成。在分析中,考虑了近场光纤探头的形状和薄膜层的厚度。在双锥型近场光纤探头的厚金层中,光纤尖端的温度高于金表面的温度。探针尖端的强加热会对光纤的涂层金属造成致命的损伤,因此很难将高强度激光耦合到近场光纤探针中以达到解吸温度。另一方面,10 nm厚的Au薄膜可以达到解吸温度。此外,为了获得较高的光强增强,采用了三锥形近场光纤探头。我们利用三锥型近场光纤探头,在50 nm厚的金薄膜层上加10 nm厚的金薄膜层,模拟证实了样品表面的极高温度分布
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