Wang Wei, Zhao Ruikang, Chang Shilong, Li Jing, Shi Yan, Liu Xiangmin, Sun Jinghua, Kang Qianlong, Guo Kai, Guo Zhongyi
Department of Mathematics and Physics, Shijiazhuang Tiedao University, Shijiazhuang 050043, China.
School of Electrical Engineering and Intelligentization, Dongguan University of Technology, Dongguan 523808, China.
Nanomaterials (Basel). 2021 Jun 3;11(6):1485. doi: 10.3390/nano11061485.
In this paper, one spin-selected vortex metalens composed of silicon nanobricks is designed and numerically investigated at the mid-infrared band, which can produce vortex beams with different topological charges and achieve different spin lights simultaneously. Another type of spin-independent vortex metalens is also designed, which can focus the vortex beams with the same topological charge at the same position for different spin lights, respectively. Both of the two vortex metalenses can achieve high-efficiency focusing for different spin lights. In addition, the spin-to-orbital angular momentum conversion through the vortex metalens is also discussed in detail. Our work facilitates the establishment of high-efficiency spin-related integrated devices, which is significant for the development of vortex optics and spin optics.
本文设计了一种由硅纳米砖组成的自旋选择涡旋超表面,并在中红外波段进行了数值研究,该超表面能够产生具有不同拓扑电荷的涡旋光束,并同时实现不同的自旋光。还设计了另一种与自旋无关的涡旋超表面,它可以分别将具有相同拓扑电荷的涡旋光束聚焦到不同自旋光的同一位置。这两种涡旋超表面都能实现对不同自旋光的高效聚焦。此外,还详细讨论了通过涡旋超表面实现的自旋到轨道角动量的转换。我们的工作有助于建立高效的自旋相关集成器件,这对涡旋光学和自旋光学的发展具有重要意义。