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Direct writing of nano patterns with nearfield enhanced laser radiation

机译:利用近场增强的激光辐射直接写入纳米图案

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Abstract: Nano processing is a cornerstone technology for several future oriented applications, as for example in the fields of high density data storage, nano matching of X-ray fresnel optics, micro electronics, micro robotics and biomolecularic. However, as well known, processing in the nanometer range with laser radiation is not possible by lenses or mirrors due to diffraction limitation. Recent research work has shown, that `focusing' of laser radiation down to a few nanometer can be obtained by using lasers in combination with nearfield technology (e.g. SNOM - Scanning Nearfield Optical Microscopy, SPM - Scanning Probe Microscopy). Lateral externally illumination of SPM probe tips with laser radiation can cause tremendous intensity enhancement in the nearfield underneath the tip. A brief theoretical consideration of this effect and results of calculations based on boundary element method is done. This kind of field energy concentration we named FOLANT-technique (FOcusing of LAserradiation in the Nearfield of a Tip). The interaction area with nanometer scale can be applied for material processing even down to atomic dimensions. Using FOLANT-technique hillocks, pits and grooves with lateral dimensions down to 10 nm have been obtained on conductive substrates as well as on dielectric materials (for example polycarbonate). Our experiments have shown, that FOLANT- technique is a promising tool for various applications in nanometer material processing.!13
机译:摘要:纳米处理是面向多种未来应用的基础技术,例如在高密度数据存储,X射线菲涅尔光学器件,微电子学,微机器人技术和生物分子学的纳米匹配领域。然而,众所周知,由于衍射限制,透镜或反射镜不可能用激光辐射在纳米范围内进行处理。最近的研究工作表明,结合使用激光与近场技术(例如SNOM-扫描近场光学显微镜,SPM-扫描探针显微镜),可以将激光辐射“聚焦”到几纳米。用激光辐射对SPM探针尖端进行侧向外部照明会在尖端下方的近场中引起极大的强度增强。对此效果进行了简要的理论考虑,并基于边界元法进行了计算。我们将这种场能集中度称为FOLANT技术(尖端近场中的激光辐射聚焦)。纳米级的相互作用区域甚至可以应用于原子尺寸的材料加工。使用FOLANT技术的小丘,可以在导电基材以及介电材料(例如聚碳酸酯)上获得横向尺寸低至10 nm的凹坑和凹槽。我们的实验表明,FOLANT技术是纳米材料加工中各种应用的有前途的工具!13

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