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3D micro-optical elements for generation of tightly focused vortex beams

机译:3D微光学元件,用于产生紧密聚焦的涡旋光束

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Orbital angular momentum carrying light beams are usedfor optical trapping and manipulation. This emerging trend provides new challenges involving device miniaturization for improved performance and enhanced functionality at the microscale. Here we discus a new fabrication method based on combining the additive 3D structuring capability laser photopolymerization and the substractive sub-wavelength resolution patterning of focused ion beam lithography to produce micro-optical elements capable of compound functionality. As a case in point of this approach binary spiral zone pattern based high numerical aperture micro-lenses capable of generating topological charge carrying tightly focused vortex beams in a single wavefront transformation step are presented. The devices were modelled using finite-difference time-domain simulations, and the theoretical predictions were verified by optically characterizing the propagation properties of light transmitted through the fabricated structures. The resulting devices had focal lengths close to the predicted values of f = 18 μm and f = 13 μm as well as topological charge ? dependent vortex focal spot sizes of ~ 1:3 μm and ~ 2:0 μm for ? = 1 and ? = 2 respectively.
机译:携带轨道角动量的光束用于光学陷波和操纵。这种新兴趋势提出了新的挑战,涉及将器件小型化以提高性能并在微观上增强功能。在这里,我们讨论一种基于相加的3D结构化能力激光光聚合和聚焦离子束光刻的亚波长子波长分辨率图案化以产生具有复合功能的微光学元件的新制造方法。作为这种方法的一个例子,提出了基于二进制螺旋区图案的高数值孔径微透镜,该微透镜能够在单个波前变换步骤中产生携带紧密聚焦的涡旋束的拓扑电荷。使用有限差分时域仿真对器件进行建模,并通过光学表征透射穿过制造结构的光的传播特性来验证理论预测。所得器件的焦距接近于f = 18μm和f = 13μm的预测值,以及拓扑电荷?对于?,取决于涡旋的焦点尺寸约为1:3μm和〜2:0μm。 = 1和? = 2。

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