4.4 Article

Refractive-diffractive hybrid optics array: comparative analysis of simulation and experiments

期刊

JOURNAL OF OPTICS
卷 24, 期 5, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/2040-8986/ac5926

关键词

hybrid optics; flexible optics; micro optics; reduced graphene oxide; diffractive optics; optical simulation

类别

资金

  1. Panasonic Factory Solutions Asia Pacific (PFSAP)
  2. Singapore Centre for 3D Printing [RCA-15/027]
  3. National Research Foundation of the Republic of Korea [NRF-2012R1A3A1050386, 2020R1A2C2102338, 2021R1A4A1031660]
  4. Korea Forest Service (Korea Forestry Promotion Institute) through the R&D Program for Forest Science Technology [2020229C10-2022-AC01]
  5. Basic Research Program - Korea Institute of Machinery and Materials [NK224C]
  6. Korea Forestry Promotion Institute (KOFPI) [2020229C10-2022-AC01] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)
  7. National Research Foundation of Korea [2020R1A2C2102338, 2021R1A4A1031660] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

The study presents a method for simulating hybrid optical elements, attaching an ultra-thin, flexible diffractive optics array onto a refractive optical element. The proposed simulation scheme reduces the use of hardware resources and computational time while maintaining resolution and accuracy. Validation of the method was done through comparison of simulation and experimental results.
Hybrid optical elements, which combine refractive and diffractive optical components to enhance optical performance by taking advantage of the optical characteristics of the individual components, have enormous potential for next-generation optical devices. However, there have not been many reports on the simulation methodology to characterize such hybrid optical systems. Here, we present a method for simulating a hybrid optical element realized by attaching an ultra-thin, flexible diffractive optics array onto a refractive optical element. The ultra-thin diffractive optical element is fabricated by direct-laser-writing using a femtosecond pulsed laser as the light source. A systematic investigation of the proposed simulation method, which does not require extensive hardware resources or computational time, but retains resolution and accuracy, is presented. The proposed scheme is validated by comparing simulation and experimental results. The simulation and experimental results on the spot size and focal length for the diffractive Fresnel zone plate (FZP) match well, with typical errors of less than 6%. The aspect ratio of the focal spot sizes at the compound and FZP focal planes of the hybrid optical system from the simulation and experiment also match quite well, with typical errors below 7%. This simulation scheme will expedite the designs for novel hybrid optical systems with optimal optical performances for specific applications, such as microfluidics and aberration-controlled optics.

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