Metasurface for Engineering Superimposed Ince‐Gaussian Beams

Author:

Ahmed Hammad1ORCID,Ansari Muhammad Afnan1,Paterson Lynn2,Li Jia3,Chen Xianzhong1ORCID

Affiliation:

1. Institute of Photonics and Quantum Sciences School of Engineering and Physical Sciences Heriot‐Watt University Edinburgh EH14 4AS UK

2. Institute of Biological Chemistry Biophysics and Bioengineering School of Engineering and Physical Sciences Heriot‐Watt University Edinburgh EH14 4AS UK

3. Shenzhen Key Laboratory of Ultraintense Laser and Advanced Material Technology Center for Advanced Material Diagnostic Technology and College of Engineering Physics Shenzhen Technology University Shenzhen 518118 China

Abstract

AbstractInce‐Gaussian beams (IGBs) are the third complete family of exact and orthogonal solutions of the paraxial wave equation and have been applied in many fields ranging from particle trapping to quantum optics. IGBs play a very important role in optics as they represent the exact and continuous transition modes connecting Laguerre–Gaussian and Hermite–Gaussian beams. The method currently in use suffers from the high cost, complexity, and large volume of the optical system. The superposition of IGBs can generate complicated structured beams with multiple phase and polarization singularities. A metasurface approach is proposed to realizing various superpositions of IGBs without relying on a complicated optical setup. By superimposing IGBs with even and odd modes, multiple phase, and polarization singularities are observed in the resultant beams. The phase and polarization singularities are modulated by setting the initial phase in the design and controlling the incident linear polarization. The compactness of the developed metasurface devices and the unique properties of the generated beams have the potential to impact many practical applications such as particle manipulation, orbital angular momentum spectrum manipulation, and optical communications.

Funder

National Natural Science Foundation of China

Royal Society of Edinburgh

Leverhulme Trust

Engineering and Physical Sciences Research Council

Publisher

Wiley

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