论文标题
使用光栅平均技术提高高数值孔径跨度的效率
Increasing efficiency of high numerical aperture metasurfaces using the grating averaging technique
论文作者
论文摘要
光学跨面比常规衍射光学元素的重要优势之一是它们有效地以大角度偏转光的能力。但是,传统上使用对小偏转角度最佳的方法设计的元信息,并且设计高数值孔径设备的性能尚未得到很好的量化。在这里,我们介绍并应用了一种技术,以估计高数值孔径跨度的效率。该技术基于周期性燃烧光栅的衍射系数的特定连贯平均值,可用于比较实现高数值孔径设备时不同元图设计的性能。与依赖全波模拟的基于优化的方法不同,并且仅在设计小型元信息方面才能实现,梯度平均技术允许设计任意较大的跨空地。使用此技术,我们确定了非常规的跨表面设计,并在实验上证明了数值为0.78的金属人,并且测量的聚焦效率为77%。光栅平均是一种多功能技术,适用于许多类型的梯度跨面,从而实现高效的跨表面组件和系统。
One of the important advantages of optical metasurfaces over conventional diffractive optical elements is their capability to efficiently deflect light by large angles. However, metasurfaces are conventionally designed using approaches that are optimal for small deflection angles and their performance for designing high numerical aperture devices is not well quantified. Here we introduce and apply a technique for the estimation of the efficiency of high numerical aperture metasurfaces. The technique is based on a particular coherent averaging of diffraction coefficients of periodic blazed gratings and can be used to compare the performance of different metasurface designs in implementing high numerical aperture devices. Unlike optimization-based methods that rely on full-wave simulations and are only practicable in designing small metasurfaces, the gradient averaging technique allows for the design of arbitrarily large metasurfaces. Using this technique, we identify an unconventional metasurface design and experimentally demonstrate a metalens with a numerical aperture of 0.78 and a measured focusing efficiency of 77%. The grating averaging is a versatile technique applicable to many types of gradient metasurfaces, thus enabling highly efficient metasurface components and systems.