Lin Zemeng, Huang Lingling, Zhao Ruizhe, Wei Qunshuo, Zentgraf Thomas, Wang Yongtian, Li Xiaowei
Opt Express. 2019 Jun 24;27(13):18740-18750. doi: 10.1364/OE.27.018740.
Designing reconfigurable metasurfaces that can dynamically control scattered electromagnetic waves and work in the near-infrared (NIR) and optical regimes remains a challenging task, which is hindered by the static material property and fixed structures. Phase change materials (PCMs) can provide high contrast optical refractive indexes at high frequencies between amorphous and crystal states, therefore are promising as feasible materials for reconfigurable metasurfaces. Here, we propose a hybrid metasurface that can arbitrarily modulate the complex amplitude of incident light with uniform amplitude and full 2π phase coverage by utilizing composite concentric rings (CCRs) with different ratios of gold and PCMs. Our designed metasurface possesses a bi-functionality that is capable of splitting beams or generating vortex beams by thermal switching between metal and semiconductor states of vanadium oxide (VO), respectively. It can be easily integrated into low loss photonic circuits with an ultra-small footprint. Our metadevice serves as a novel paradigm for active control of beams, which may open new opportunities for signal processing, memory storage, holography, and anti-counterfeiting.
设计能够动态控制散射电磁波并在近红外(NIR)和光学波段工作的可重构超表面仍然是一项具有挑战性的任务,这受到静态材料特性和固定结构的阻碍。相变材料(PCM)在高频下非晶态和晶态之间可提供高对比度的光学折射率,因此有望成为可重构超表面的可行材料。在此,我们提出一种混合超表面,通过利用具有不同金与PCM比例的复合同心环(CCR),能够以均匀幅度和完整2π相位覆盖任意调制入射光的复振幅。我们设计的超表面具有双功能,分别通过氧化钒(VO)从金属态到半导体态的热切换能够实现光束分裂或产生涡旋光束。它可以轻松集成到具有超小尺寸的低损耗光子电路中。我们的超器件作为光束主动控制的一种新范例,可能为信号处理、存储、全息术和防伪开辟新机遇。