Dai Yanmeng, Cai Hongbing, Ding Huaiyi, Ning Zhen, Pan Nan, Zhu Hong, Shi Qinwei, Wang Xiaoping
Opt Express. 2015 Apr 6;23(7):8929-38. doi: 10.1364/OE.23.008929.
Metasurfaces made of subwavelength resonators can modify the wave front of light within the thickness much less than free space wavelength, showing great promises in integrated optics. In this paper, we theoretically show that electric and magnetic resonances supported simultaneously by a subwavelength nanowire with high refractive-index can be utilized to design metasurfaces with near-unity transmittance. Taking silicon nanowire for instance, we design numerically a near-infrared quarter-waveplate with high transmittance using a subwavelength nanowire array. The operation bandwidth of the waveplate is 0.14 μm around the center wavelength of 1.71 μm. The waveplate can convert a 45° linearly polarized incident light to circularly polarized light with conversion efficiency ranging from 94% to 98% over the operation band. The performance of quarter waveplate can in principle be tuned and improved through optimizing the parameters of nanowire arrays. Its compatibility to microelectronic technologies opens up a distinct possibility to integrate nanophotonics into the current silicon-based electronic devices.
由亚波长谐振器构成的超表面能够在远小于自由空间波长的厚度内改变光的波前,在集成光学领域展现出巨大的应用前景。在本文中,我们从理论上证明,由具有高折射率的亚波长纳米线同时支持的电谐振和磁谐振可用于设计具有近单位透过率的超表面。以硅纳米线为例,我们利用亚波长纳米线阵列数值设计了一种具有高透过率的近红外四分之一波片。该波片在中心波长1.71μm附近的工作带宽为0.14μm。在整个工作频段内,该波片能够将45°线偏振入射光转换为圆偏振光,转换效率在94%至98%之间。原则上,通过优化纳米线阵列的参数,可以调整和改善四分之一波片的性能。它与微电子技术的兼容性为将纳米光子学集成到当前基于硅的电子器件中开辟了独特的可能性。