All chalcogenide glass metalens: microstructured infrared glass surfaces enable lighter and thinner long-wave infrared imaging components
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All chalcogenide glass metalens: microstructured infrared glass surfaces enable lighter and thinner long-wave infrared imaging components

11/10/2024 Compuscript Ltd

A new publication from Opto-Electronic Sciences; DOI 10.29026/oes.2024.240017 , discusses all chalcogenide glass metalens.

Visual perception plays a crucial role in human understanding of the world: the eyes receive scattered light from object surfaces, which is focused onto the retina through the eye lens, allowing us to see vibrant scenes. However, this process of visible light imaging depends on external illumination and is easily affected by environmental factors like smoke. According to Planck's law, objects with a temperature (above -273.15 ℃) emit light spontaneously, with the radiation spectrum of room temperature objects mainly concentrated in the long-wave infrared range (wavelengths ranging from 8 to 12 μm). Long-wave infrared imaging technology can provide high-quality imaging in low-light conditions, haze, smoke, and other complex environments, and is sensitive to changes in temperature. Therefore, it has wide-ranging applications in military, security, medical, and other fields. Currently, long-wave infrared cameras are bulky and heavy. Developing lightweight long-wave infrared imaging systems can effectively support the development of emerging fields such as autonomous driving and UAV vision. Achieving this goal hinges on the development of lightweight, thin, and mass-producible long-wave infrared metalenses, offering an effective implementation solution.

Recently, a research team from Ningbo University led by Yixiao Gao and Xiang Shen, in collaboration with teams from Zhejiang University and Nottingham Trent University in the UK, have proposed a novel type of long-wave infrared metalens. This metalens is directly etched with high aspect ratio microstructures on the surface of chalcogenide glass, enabling efficient focusing and imaging of long-wave infrared light fields. It offers advantages such as simple structure and ease of mass production.

In recent years, the development of all-dielectric metalens technology has leveraged artificially structured subwavelength arrays to flexibly control the phase, amplitude, and polarization of incident light fields. These metalenses are characterized by their flat, ultra-thin, compact, and easily integrable properties, making them highly suitable for integrated optical systems. However, all-dielectric metalenses face two main challenges in the long-wave infrared spectrum: (1) common optical materials such as silica glass are opaque, and (2) fabricating micron-thick dielectric microstructures on heterogeneous substrates leads to reliability issues in complex environments, such as thermal mismatch-induced microstructure collapse.

To address these challenges, researchers propose directly fabricating metalenses on surfaces of materials transparent to long-wave infrared radiation, such as silicon and germanium. However, silicon absorbs in the long-wave infrared range, while germanium has a high thermal expansion coefficient and increased absorption at elevated temperatures. Chalcogenide glass, composed of chalcogen elements (sulfur, selenium, or tellurium), is an amorphous material with a high refractive index, extremely low absorption losses, and excellent optical and thermal stability in the long-wave infrared range. It has demonstrated promising applications in optical fibers and integrated photonics devices. Directly patterning superstructured lenses on chalcogenide glass surfaces thus presents a new approach to realizing long-wave infrared metalenses.

Keywords: chalcogenide glasses / long wave infrared / metalens

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Laboratory of Infrared Materials and Devices at Ningbo University (NBU) is a leading team in China dedicated to the research and development of infrared materials and photonics devices. The laboratory currently comprises 34 researchers and over 200 graduate students pursuing doctoral and master's degrees. In recent years, they have led more than 70 national-level research projects and over 50 provincial and ministerial-level projects. They have consistently ranked first globally for nearly a decade in terms of SCI papers published in the research field of chalcogenide glasses. The team holds over 150 national authorized invention patents, the most in China in the field of chalcogenide glasses. They have also contributed to the establishment of 5 national standards and have received numerous awards, including the National Technical Invention Award (Second Prize in 2014) and the Zhejiang Province Science and Technology Progress Award (First Prize in 2012).
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Opto-Electronic Science (OES) is a peer-reviewed, open access, interdisciplinary and international journal published by The Institute of Optics and Electronics, Chinese Academy of Sciences as a sister journal of Opto-Electronic Advances (OEA, IF=15.3). OES is dedicated to providing a professional platform to promote academic exchange and accelerate innovation. OES publishes articles, reviews, and letters of the fundamental breakthroughs in basic science of optics and optoelectronics.
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More information: https://www.oejournal.org/oes
Editorial Board: https://www.oejournal.org/oes/editorialboard/list
OES is available on OE journals (https://www.oejournal.org/oes/archive)
Submission of OES may be made using ScholarOne (https://mc03.manuscriptcentral.com/oes)
CN 51-1800/O4
ISSN 2097-0382
Contact Us: oes@ioe.ac.cn
Twitter: @OptoElectronAdv (https://twitter.com/OptoElectronAdv?lang=en)
WeChat: OE_Journal
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Gu ZF, Gao YX, Zhou KS et al. Surface-patterned chalcogenide glasses with high-aspect-ratio microstructures for long-wave infrared metalenses. Opto-Electron Sci 3, 240017 (2024). doi: 10.29026/oes.2024.240017
Gu ZF, Gao YX, Zhou KS et al. Surface-patterned chalcogenide glasses with high-aspect-ratio microstructures for long-wave infrared metalenses. Opto-Electron Sci 3, 240017 (2024). doi: 10.29026/oes.2024.240017 
Archivos adjuntos
  • Figure 1. (a) Chalcogenide glass; (b) All chalcogenide glass metalens, scale bar is 2 mm; (c) SEM image of chalcogenide glass micropillars, scale bar is 20 μm; (d) Local magnification image of (c), scale bar is 10 μm; (e) Schematic diagram of the fabrication process of the all-chalcogenide glass metalens.
  • Figure 2. (a) Image of the focal spot of a chalcogenide glass metalens illuminated by a λ = 9.78 μm laser beam, and a focal spot size is 1.39λ; (b-c) Thermal imaging of NBU logo and a human hand captured by the chalcogenide glass metalens.
11/10/2024 Compuscript Ltd
Regions: Europe, Ireland, Asia, China
Keywords: Applied science, Technology

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