Numerical Derivation of Dual Vortex Beam Generation using Polarization‐Sensitive Dielectric Metasurfaces

IF 2.2 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Heonyeong Jeong, Younghwan Yang, Junsuk Rho
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引用次数: 0

Abstract

Metasurfaces, composed of arranged nanoscale particles, manipulate electromagnetic waves for tailored physical properties. Recently vortex beams, carrying orbital angular momentum, have been generated through metasurfaces to realize diverse applications. Here, the study introduces a metasurface capable of generating dual‐mode vortex beams, which combines the functionalities of chiral metalenses and vortex beam generation. These dual‐mode vortex beams exhibit varying characteristics depending on the polarization state of the incident light, offering improved control over orbital angular momentum. This advancement holds promise for enhancing applications such as optical communication, optical tweezers, and imaging for overcoming diffraction limit. By employing titanium dioxide (TiO2) for its efficiency, the design concept is validated through simulations and discuss considerations for fabrication. The proposed approach paves the way for compact optical systems with heightened adaptability.

Abstract Image

利用偏振敏感介电元表面生成双涡旋光束的数值推导
元表面由排列整齐的纳米级微粒组成,可操控电磁波,实现量身定制的物理特性。最近,通过元表面产生的携带轨道角动量的涡旋束实现了多种应用。本研究介绍了一种能够产生双模涡旋束的元表面,它结合了手性金属透镜和涡旋束产生的功能。这些双模涡旋光束会根据入射光的偏振态表现出不同的特性,从而改善对轨道角动量的控制。这一进步有望改善光通信、光镊和成像等应用,克服衍射极限。通过采用二氧化钛(TiO2)来提高效率,设计理念通过模拟得到了验证,并讨论了制造方面的注意事项。所提出的方法为具有更强适应性的紧凑型光学系统铺平了道路。
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来源期刊
Annalen der Physik
Annalen der Physik 物理-物理:综合
CiteScore
4.50
自引率
8.30%
发文量
202
审稿时长
3 months
期刊介绍: Annalen der Physik (AdP) is one of the world''s most renowned physics journals with an over 225 years'' tradition of excellence. Based on the fame of seminal papers by Einstein, Planck and many others, the journal is now tuned towards today''s most exciting findings including the annual Nobel Lectures. AdP comprises all areas of physics, with particular emphasis on important, significant and highly relevant results. Topics range from fundamental research to forefront applications including dynamic and interdisciplinary fields. The journal covers theory, simulation and experiment, e.g., but not exclusively, in condensed matter, quantum physics, photonics, materials physics, high energy, gravitation and astrophysics. It welcomes Rapid Research Letters, Original Papers, Review and Feature Articles.
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