4.6 Article

Optimal Design and Analysis of 4.7 μm Hybrid Deep Dielectric High Efficiency Transmission Gratings

Journal

MICROMACHINES
Volume 13, Issue 10, Pages -

Publisher

MDPI
DOI: 10.3390/mi13101706

Keywords

mid-infrared; diffraction grating; multilayer dielectric; transmission grating; high diffraction efficiency

Funding

  1. National Science and Technology Major Project of China [2021YFF0700500]
  2. National Natural Science Foundation of China (NSFC) [62090051, 62090052, 62090054, 11874353, 61935009, 61934003, 61904179, 62004194]
  3. Science and Technology Development Project of Jilin Province [20200401069GX, 20200401062GX, 20200501006GX, 20200501007GX, 20200501008GX]
  4. Key R&D Program of Changchun [21ZGG13, 21ZGN23]
  5. Innovation and entrepreneurship Talent Project of Jilin Province [2021Y008]
  6. Lingyan Research Program of Zhejiang Province [2022C01108]

Ask authors/readers for more resources

This paper introduces a design for a high-efficiency transmission grating in the 4.7 μm band, made of composite materials with diffraction efficiency exceeding 96%. The grating has a first-order diffraction efficiency of over 99.77% at 4746 nm. This optimized design may boost spectral beam combining power and brightness effectively.
There is currently no transmission grating with good diffraction efficiency in the 4.7 mu m band. Metal gratings at this wavelength are all reflective gratings which has a diffraction efficiency of lower than 90% and lower laser damage threshold. In this paper, we bring up a design of a multi-layer transmission grating with both high diffraction efficiency and wide working wavelength band. We have proved that the transmission grating made of composite materials has an average diffraction effectiveness of more than 96% throughout the whole spectral range of 200 nm. Meanwhile, the theoretically computed transmission grating has a highest first-order diffraction efficiency of more than 99.77% at 4746 nm. This multilayer dielectric film transmission grating's optimized design may further boost spectral beam combining power, providing a practical technique for increasing SBC power and brightness.

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