4.3 Article

Freeform wavelength division multiplexing metagrating based on topology optimization

Journal

ACTA PHYSICA SINICA
Volume 71, Issue 22, Pages -

Publisher

CHINESE PHYSICAL SOC
DOI: 10.7498/aps.71.20221013

Keywords

freeform metasurface; inverse design; topology optimization; wavelength division multiplexing

Funding

  1. National Natural Science Foundation of China [12104509, 62105338]
  2. International Science and Technology Cooperation Program of Sichuan Province, China [2020YFH0002]

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In this paper, a freeform wavelength division multiplexing (WDM) metagrating with a large deflection angle and polarization-insensitive characteristics is inversely designed by using an adjoint multi-objective topology optimization method. The designed metagrating has the advantages of large deflection angle, high efficiency, and low spatial crosstalk, making it suitable for applications in optical communication, micro and nano-optical field modulation, and Rydberg atom-based microwave measurements.
Metasurfaces consist of arrays of artificial atoms arranged on a subwavelength scale, and have significant advantages in modulating the phase, amplitude, and polarization of optical field. Limited by the discrete sampling principle and the assumption of periodicity, the conventional forward design method suffers unavoidable design errors, which easily leads the device performance to degrade. In this paper, a freeform wavelength division multiplexing (WDM) metagrating with a large deflection angle and polarization-insensitive characteristics is inversely designed by using an adjoint multi-objective topology optimization method. The simulation results show that the topology-optimized WDM metagrating has superior polarization in sensitivity compared with the discrete regular structure, with a deflection angle of 70.8 degrees at 510 nm, an absolute deflection efficiency of 48%, and a transmission efficiency of 98% for 852 nm incident light. On this basis, the absolute deflection efficiency can be optimized to more than 70% by using a random initial structure. The freeform WDM metagrating designed in this paper has the advantages of large deflection angle, high efficiency, and low spatial crosstalk, and has potential applications in optical communication, micro and nano-optical field modulation, and Rydberg atom-based microwave measurements.

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