Loetgering Lars, Baluktsian Margarita, Keskinbora Kahraman, Horstmeyer Roarke, Wilhein Thomas, Schütz Gisela, Eikema Kjeld S E, Witte Stefan
Advanced Research Center for Nanolithography, Science Park 106, 1098 XG Amsterdam, Netherlands.
Vrije Universiteit, De Boelelaan 1081, 1081 HV Amsterdam, Netherlands.
Sci Adv. 2020 Feb 14;6(7):eaax8836. doi: 10.1126/sciadv.aax8836. eCollection 2020 Feb.
The phenomenon of orbital angular momentum (OAM) affects a variety of important applications in visible optics, including optical tweezers, free-space communication, and 3D localization for fluorescence imaging. The lack of suitable wavefront shaping optics such as spatial light modulators has inhibited the ability to impart OAM on x-ray and electron radiation in a controlled way. Here, we report the experimental observation of helical soft x-ray beams generated by holographically designed diffractive optical elements. We demonstrate that these beams rotate as a function of propagation distance and measure their vorticity and coherent mode structure using ptychography. Our results establish an approach for controlling and shaping of complex focused beams for short wavelength scanning microscopy and OAM-driven applications.
轨道角动量(OAM)现象影响着可见光光学中的各种重要应用,包括光镊、自由空间通信以及荧光成像的三维定位。缺乏诸如空间光调制器之类合适的波前整形光学器件,阻碍了以可控方式将OAM赋予X射线和电子辐射的能力。在此,我们报告了通过全息设计的衍射光学元件产生螺旋软X射线束的实验观察结果。我们证明这些光束会随着传播距离而旋转,并使用叠层成像术测量它们的涡度和相干模式结构。我们的结果建立了一种用于短波长扫描显微镜和OAM驱动应用中复杂聚焦光束的控制与整形方法。