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基于编码相位梯度超表面产生多波束多模态太赫兹涡旋波

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设计了一种2-bit编码相位梯度超表面,用于实现多波束多模态太赫兹涡旋波.根据Pancharatnam-Berry(PB)几何相位原理在超表面单元中引入相位梯度,设计出编码元素"00""01""10""11".将上述编码元素按照不同的编码序列进行排布,分别获得模态为l=-1、l=-2涡旋波的编码相位梯度超表面以及两分束的编码相位梯度超表面.利用傅里叶卷积定理,将产生涡旋波的编码序列与两分束的编码序列进行卷积,产生了l=-1或l=-2同一模态的两分束涡旋波.利用相位叠加原理,将产生不同模态的两分束涡旋波的相位相结合,构成具有新相位分布的编码相位梯度超表面.仿真结果表明:线极化波激励下,所设计的编码相位梯度超表面能同时产生两束l=-1、两束l=-2、两束l=+1和两束l=+2的涡旋波,其将在无线通信及高分辨率成像等方面有潜在的应用价值.
Generation of Multibeam Multi-Modal Terahertz Vortex Beams Based on Coding Phase Gradient Metasurface
Objective Terahertz vortex beams are a type of optical beam with a helical optical phase structure and frequencies in the range of 0.1-10 THz.Meanwhile,they have potential applications in emerging fields such as high-resolution terahertz imaging,electron acceleration,and manipulation of quantum states.The terahertz coding phase gradient metasurface serves as an important device for modulating terahertz waves,featuring simple structure,small size,low cost,low loss,and high efficiency.By introducing phase gradients in the super-unit-cell,the coding elements are formed to enable more flexible control of electromagnetic waves by altering the coding elements and coding sequences.Currently,the generation of multibeam multi-modal terahertz vortex waves is generally achieved by adopting the coding metasurface.However,this approach requires a large number of coding metasurface units,resulting in high computational complexity and a complex design process with large dimensions.To generate multibeam multi-modal terahertz vortex waves more flexibly and simply,we propose a transmissive coding phase gradient metasurface.By utilizing Fourier convolution operations and the phase superposition principle,the generation of multibeam multi-modal terahertz vortex waves is realized.This technology holds potential application significance in fields such as wireless communication and high-resolution imaging.Methods First,we design the transmission metasurface units based on the Pancharatnam-Berry(PB)geometric phase principle.Next,the designed metasurface units are employed to form the 6×6 super-unit-cell,in which phase gradients are introduced to create coding elements.Then,three coding phase gradient metasurfaces are designed to produce double beams and generate single beams of l=-1 and l=-2 vortex waves.Additionally,Fourier convolution of the double beams coding sequences is performed with the vortex wave coding sequences of different modalities,with the coding phase gradient metasurface for generating single-mode double beams vortex waves acquired.The phase distribution of the coding phase gradient metasurface which generates double vortex beams with l=-2 is matrix inversion and then combined with the phase distribution of the coding phase gradient metasurface which generates double vortex beams with l=-1 using the phase superposition principle,thus preventing the overlapping of spiral waves generating different modes.By arranging the coding elements,this process leads to the coding phase gradient metasurface capable of generating multibeam multi-modal terahertz vortex beams.Results and Discussions When 2.0 THz x-and y-polarized waves are vertically incident on the metasurface units(Fig.1),the amplitudes of the co-polarized transmission for both polarizations are approximately 0.9,and their co-polarized transmission phase differences are close to 180°,which meets the requirements of the PB geometric phase principle(Fig.2).Then,phase gradients are introduced in the super-unit-cell and 2-bit coding elements are designed(Fig.4).Based on the Fourier convolution operation(Fig.9)and phase superposition principle,the coding phase gradient metasurface is designed(Fig.12).The far-field scattering of the coding phase gradient metasurface is simulated by CST Microwave Studio.The results show that under the vertical incidence of 2.0 THz linear polarization(LP)waves,it is possible to simultaneously generate two vortex beams of l=-1,two vortex beams of l=-2,two vortex beams of l=+1,and two vortex beams of l=+2[Fig.13(a)].Additionally,these eight vortex waves do not overlap and do not interfere with each other.The elevation angle θ and azimuth angle φ of each beam can also be obtained[Figs.13(b)and(c)].In the x-direction,there are two vortex beams of l=-1 with an azimuth angle of 270° and elevation angles of 58° and 78° respectively.In the+y direction,there are two vortex beams of l=+2 with azimuth angles of 25.5° and 333.5° and an elevation angle of 65°.In the+xdirection,there are two vortex beams of l=+1 with an azimuth angle of 90° and elevation angles of 55° and 80° respectively.In the-y direction,there are two vortex beams of l=-2 with azimuth angles of 153° and 207° and an elevation angle of 46°.Conclusions We propose a coding phase gradient metasurface working at a frequency of 2.0 THz based on the PB geometric phase principle,Fourier convolution operation,and phase superposition principle.Under the vertical incident of the LP wave,a newly coding phase gradient metasurface can generate eight vortex waves in total,with mode orders of l=±1 and l=±2 respectively.Compared to the reported metasurfaces for generating multibeam multi-modal terahertz vortex waves,this metasurface features small dimensions,relatively simple principles,few unit elements,easy material acquisition,and the ability to design different modes of vortex waves.This enables more flexible and diverse control of terahertz beam steering.Finally,potential applications are presented in wireless communication,radar,high-resolution imaging,energy transfer,and stealth technology.

terahertzvortex beamcoding phase gradient metasurfacecoding element

孙文俊、汪静丽、尹亮、万洪丹、陈鹤鸣、钟凯

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南京邮电大学电子与光学工程学院,江苏南京 210023

南京邮电大学贝尔英才学院,江苏南京 210023

天津大学精密仪器与光电子工程学院,教育部光电信息技术重点实验室,天津 300072

太赫兹 涡旋波 编码相位梯度超表面 编码元素

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(16)