Tang Shiwei, Cai Tong, Wang Guang-Ming, Liang Jian-Gang, Li Xike, Yu Jiancheng
Department of Physics, Faculty of Science, Ningbo University, Ningbo, 315211, China.
Air and Missile Defend College, Air force Engineering University, Xi' an, 710051, China.
Sci Rep. 2018 Apr 23;8(1):6422. doi: 10.1038/s41598-018-24929-4.
Vortex beam is believed to be an effective way to extend communication capacity, but available efforts suffer from the issues of complex configurations, fixed operation mode as well as low efficiency. Here, we propose a general strategy to design dual-modes vortex beam generator by using metasurfaces with polarization-dependent transmission and reflection properties. Combining the focusing and vortex functionalities, we design/fabricate a type of compact dual-modes vortex beam generator operating at both reflection/transmission sides of the system. Experimental results demonstrate that the designed metadevice can switch freely and independently between the reflective vortex with topological charge m = 2 and transmissive vortex with m = 1. Moreover, the metadevice exhibits very high efficiencies of 91% and 85% for the reflective and transmissive case respectively. Our findings open a door for multifunctional metadevices with high performances, which indicate wide applications in modern integration-optics and wireless communication systems.
涡旋光束被认为是扩展通信容量的一种有效方式,但现有的方法存在配置复杂、操作模式固定以及效率低等问题。在此,我们提出一种通用策略,通过使用具有偏振依赖传输和反射特性的超表面来设计双模式涡旋光束发生器。结合聚焦和涡旋功能,我们设计并制造了一种紧凑的双模式涡旋光束发生器,其在系统的反射/透射两侧均能工作。实验结果表明,所设计的超器件能够在拓扑电荷m = 2的反射涡旋和m = 1的透射涡旋之间自由且独立地切换。此外,该超器件在反射和透射情况下分别展现出91%和85%的非常高的效率。我们的研究结果为高性能多功能超器件打开了一扇门,这表明其在现代集成光学和无线通信系统中有广泛应用。