Rapid design of wide-area heterogeneous electromagnetic metasurfaces beyond the unit-cell approximation

被引:12
作者
Donda K.D. [1 ]
Hegde R.S. [1 ]
机构
[1] Department of Electrical Engineering, Indian Institute of Technology-Gandhinagar, Gandhinagar, 382355, Gujarat
来源
Progress In Electromagnetics Research M | 2017年 / 60卷
关键词
Efficiency - Global optimization;
D O I
10.2528/PIERM17070405
中图分类号
学科分类号
摘要
We propose a novel numerical approach for the optimal design of wide-area heterogeneous electromagnetic metasurfaces beyond the conventionally used unit-cell approximation. The proposed method exploits the combination of Rigorous Coupled Wave Analysis (RCWA) and global optimization techniques (two evolutionary algorithms namely the Genetic Algorithm (GA) and a modified form of the Artificial Bee Colony (ABC with memetic search phase method) are considered). As a specific example, we consider the design of beam deflectors using all-dielectric nanoantennae for operation in the visible wavelength region; beam deflectors can serve as building blocks for other more complicated devices like metalenses. Compared to previous reports using local optimization approaches, our approach improves device efficiency; transmission efficiency is especially improved for wide deflection angle beam deflectors. The ABC method with memetic search phase is also an improvement over the more commonly used GA as it reaches similar efficiency levels with a 35% reduction in computation time. The method described here is of interest for the rapid design of a wide variety of electromagnetic metasurfaces irrespective of their operational wavelength. © 2017, Electromagnetics Academy. All rights reserved.
引用
收藏
页码:1 / 10
页数:9
相关论文
共 30 条
[1]  
Genevet P., Capasso F., Holographic optical metasurfaces: A review of current progress, Reports on Progress in Physics, 78, 2, (2015)
[2]  
Lin D., Fan P., Hasman E., Brongersma M.L., Dielectric gradient metasurface optical elements, Science, 345, 6194, pp. 298-302, (2014)
[3]  
Meinzer N., Barnes W.L., Hooper I.R., Plasmonic meta-atoms and metasurfaces, Nature Photonics, 8, 12, pp. 889-898, (2014)
[4]  
Huidobro P.A., Kraft M., Maier S.A., Pendry J.B., Graphene as a tunable anisotropic or isotropic plasmonic metasurface, ACS Nano, 10, pp. 5499-5506, (2016)
[5]  
Minovich A.E., Miroshnichenko A.E., Bykov A.Y., Murzina T.V., Neshev D.N., Kivshar Y.S., Functional and nonlinear optical metasurfaces, Laser and Photonics Reviews, 9, 2, pp. 195-213, (2015)
[6]  
Yu N., Capasso F., Flat optics with designer metasurfaces, Nature Materials, 13, 2, pp. 139-150, (2014)
[7]  
Aieta F., Genevet P., Kats M.A., Yu N., Blanchard R., Gaburro Z., Capasso F., Aberrationfree ultrathin flat lenses and axicons at telecom wavelengths based on plasmonic metasurfaces, Nano Letters, 12, 9, pp. 4932-4936, (2012)
[8]  
Campione S., Basilio L.I., Warne L.K., Sinclair M.B., Tailoring dielectric resonator geometries for directional scattering and Huygens metasurfaces,”, Optics Express, 23, 3, (2015)
[9]  
Decker M., Staude I., Falkner M., Dominguez J., Neshev D.N., Brener I., Pertsch T., Kivshar Y.S., High-efficiency dielectric huygens surfaces,”, Advanced Optical Materials, 3, 6, pp. 813-820, (2015)
[10]  
Staude I., Miroshnichenko A.E., Decker M., Fofang N.T., Liu S., Gonzales E., Dominguez J., Luk T.S., Neshev D.N., Brener I., Kivshar Y., Tailoring directional scattering through magnetic and electric resonances in subwavelength silicon nanodisks, ACS Nano, 7, 9, pp. 7824-7832, (2013)