Rahmanzadeh Mahdi, Khavasi Amin
Opt Express. 2022 Apr 11;30(8):12440-12455. doi: 10.1364/OE.447368.
The recently proposed concept of metagrating enables wavefront manipulation of electromagnetic (EM) waves with unitary efficiency and relatively simple fabrication requirements. Herein, two-dimensional (2D) metagratings composed of a 2D periodic array of rectangular holes in a metallic medium are proposed for diffraction pattern control. We first present an analytical method for diffraction analysis of 2D compound metallic metagrating (a periodic metallic structure with more than one rectangular hole in each period). Closed-form and analytical expressions are presented for the reflection coefficients of diffracted orders for the first time. Next, we verify the proposed method's results against full-wave simulations and demonstrate their excellent agreement. As a proof of principle, two applications are presented using the proposed analytical method. The first application is a perfect out-of-plane reflector that transfers a normal transverse-magnetic (TM) polarized plane wave to an oblique transverse-electric (TE) polarized plane wave in the y - z plane. The second one is a five-channel beam splitter with an arbitrary power distribution between channels. Using the proposed analytical method, we designed these metagratings without requiring even a single optimization in a full-wave solver. The performance of the designed metagratings is better than previously reported structures in terms of power efficiency and relative distribution error. Our analytical results reveal that 2D metagratings can be used for manipulating EM waves in the plane and out of the plane of incidence with very high efficiency, thereby leading to extensive applications in a wide range of frequencies from microwave to terahertz (THz) regimes.
最近提出的超光栅概念能够以单一效率和相对简单的制造要求对电磁波(EM)进行波前操纵。在此,提出了由金属介质中二维矩形孔的二维周期阵列组成的二维超光栅,用于衍射图案控制。我们首先提出一种用于二维复合金属超光栅(每个周期有多个矩形孔的周期性金属结构)衍射分析的解析方法。首次给出了衍射级反射系数的闭式解析表达式。接下来,我们将所提方法的结果与全波模拟结果进行验证,并证明它们具有极好的一致性。作为原理验证,使用所提解析方法给出了两个应用实例。第一个应用是一个完美的面外反射器,它能将垂直的横向磁(TM)极化平面波转换为yz平面内倾斜的横向电(TE)极化平面波。第二个应用是一个五通道分束器,各通道之间具有任意功率分布。使用所提解析方法,我们设计这些超光栅时甚至无需在全波求解器中进行任何优化。在功率效率和相对分布误差方面,所设计超光栅的性能优于先前报道的结构。我们的分析结果表明,二维超光栅可用于高效操纵入射平面内和平面外的电磁波,从而在从微波到太赫兹(THz)波段的广泛频率范围内有广泛应用。