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3D laser printing by ultra-short laser pulses for micro-optical applications: towards telecom wavelengths

机译:超短激光脉冲的3D激光打印,用于微光学应用:朝着电信波长发展

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摘要

Three dimensional (3D) fast (< 0.5 hour) printing of micro-optical elements down to sub-wavelength resolution over 100 μm footprint areas using femtosecond (fs-)laser oscillator is presented. Using sub-1 nJ pulse energies, optical vortex generators made of polymerised grating segments with an azimuthally changing orientation have been fabricated in SZ2080 resist; width of polymerised rods was ~ 150 nm and period 0.6-1 μm. Detailed phase retardance analysis was carried out manually with Berek compensator (under a white light illumination) and using an equivalent principle by an automated Abrio implementation at 546 nm. Direct experimental measurements of retardance was required since the period of the grating was comparable (or larger) than the wavelength of visible light. By gold sputtering, transmissive optical vortex generators were turned into reflective ones with augmented retardance, △n x h defined by the form birefringence, An, and the height h = 2d where d is the thickness of the polymerised structure. Retardance reached 315 nm as measured with Berek compensator at visible wavelengths. Birefringent phase delays of π (or λ/2 in wavelength) required for high purity vortex generators can be made based on the proposed approach. Optical vortex generators for telecom wavelengths with sub-wavelength patterns of azimuthally oriented gratings are amenable by direct laser polymerisation.
机译:提出了使用飞秒(fs-)激光振荡器对微光学元件进行三维(3D)快速(<0.5小时)打印,印刷到亚波长分辨率超过100μm覆盖区域的方法。利用低于1 nJ的脉冲能量,在SZ2080抗蚀剂中制造了由方位角变化的聚合光栅段制成的光学涡流发生器;聚合棒的宽度约为150 nm,周期为0.6-1μm。详细的相位延迟分析是通过Berek补偿器(在白光照射下)手动进行的,并使用等效原理通过自动Abrio装置在546 nm处进行的。由于光栅的周期可比(或大于)可见光的波长,因此需要直接实验测量延迟。通过金溅射,将透射光学涡流发生器转变为具有增大的延迟的反射型光学涡流发生器,△n x h由形式双折射An定义,高度h = 2d,其中d是聚合结构的厚度。用Berek补偿器在可见光波长下测得的延迟达到315 nm。高纯度涡流发生器所需的双折射相位延迟为π(或波长为λ/ 2),可以基于提出的方法进行。具有电信方向波长的光学涡流发生器具有方位角取向的光栅的亚波长模式,可以通过直接激光聚合来实现。

著录项

  • 来源
  • 会议地点 Shanghai(CN)
  • 作者单位

    'Tokyo Institute of Technology, Meguro-ku, Tokyo 152-8550, Japan;

    Research Institute of Electronics, Shizuoka University, 3-5-1 Johoku, Naka-ku, Hamamatsu 432-8561, Japan;

    'Tokyo Institute of Technology, Meguro-ku, Tokyo 152-8550, Japan;

    Universite Bordeaux, CNRS, LOMA, UMR5798, 351 Cours de la Liberation, 33405 Talence, France;

    Universite Bordeaux, CNRS, LOMA, UMR5798, 351 Cours de la Liberation, 33405 Talence, France;

    Department of Quantum Electronics, Physics Faculty, Vilnius University, Sauletekio Ave. 10, LT-10223, Vilnius, Lithuania;

    Department of Quantum Electronics, Physics Faculty, Vilnius University, Sauletekio Ave. 10, LT-10223, Vilnius, Lithuania;

    Nanotechnology facility, Swinburne Univerisity of Technology, John st., Hawthorn, 3122 Vic, Australia,Melbourne Centre for Nanofabrication, the Victorian Node of the Australian National Fabrication Facility, 151 Wellington Rd., Clayton 3168 Vic, Australia;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    spin-orbit coupling; optical vortex; q-plates; laser polymerisation;

    机译:自旋轨道耦合;光学涡旋q板激光聚合;

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