Türkçe

Nanjing University of Science and Technology has made new progress in the field of programmable lensless holographic cameras

63
2025-04-14 10:29:58
Çeviriyi gör

Recently, Professor Chen Qian and Professor Zuo Chao's research group from the School of Electronic Engineering and Optoelectronic Technology at Nanjing University of Science and Technology proposed a minimalist optical imaging method based on programmable masks - programmable Fresnel zone aperture lensless imaging technology. The related achievement, titled "Lensless Imaging with a Programmable Fresnel Zone Aperture," was published in the top international journal Science Advances. Zhang Xu, a master's student from the School of Optoelectronics at Nanjing University of Science and Technology in 2022, and Wang Bowen, a doctoral student from the School of Optoelectronics in 2019, are co first authors. Professor Chen Qian and Professor Zuo Chao are co corresponding authors, and they are the first completion unit and communication unit.

Traditional optical imaging systems mainly rely on the collaborative cooperation between image sensors and optical lenses to achieve the recording and focusing of optical signals separately. In recent years, with the rapid development of applications such as mobile photography and wearable devices, image sensors have achieved miniaturization and low cost, basically meeting the needs of most application scenarios for lightweight and economy. However, optical lenses, especially high-performance lenses, still face problems such as large size, heavy weight, and high manufacturing costs, which seriously restrict the application of imaging systems in scenarios with high lightweight requirements such as virtual reality (VR), augmented reality (AR), and human-computer interaction. This has become a key bottleneck that currently restricts the overall performance improvement and application expansion of the system.

Lens free imaging technology introduces a front-end optical encoding mask to replace traditional lens control of the light field, and combines back-end digital computing to demodulate the light field information, effectively reducing the cost and volume of traditional optical imaging systems, and achieving high-dimensional perception and phase inversion of incoherent light fields. However, existing static masks have fixed mask structures and system parameters that are difficult to flexibly adjust according to scene requirements, which makes the system prone to aliasing artifacts, reconstruction pathology, and other problems under complex or non ideal conditions, affecting imaging quality and usability. Therefore, how to further improve system resolution, signal-to-noise ratio, and enhance adaptability to complex dynamic scenes while maintaining the basic architecture of "minimalist optics" for lensless imaging is a core issue and technical challenge that urgently needs to be overcome in this field.

To address the aforementioned issues, the research team innovatively introduced the concept of "encoding regulation" and proposed a minimalist optical imaging technique based on "programmable masks" - the LenslessImaging with a Programmable Fresnel Zone Aperture (FZA) lensless imaging method (LIP). By dynamically displaying FZA patterns with spatial offset on programmable masks, LIP can achieve sub aperture information modulation and acquisition in the frequency domain, and fuse the data of each sub aperture using parallel reconstruction algorithms to obtain high-resolution, high signal-to-noise ratio lensless holographic images (Figure 1).

 



Figure 1. Schematic diagram of programmable FZA lensless holographic imaging system. (A) Composition and schematic diagram of imaging system; (B) Lens free imaging framework and encoding control strategy based on joint optimization of spatial and frequency domains; (C) Small scale LIP lensless imaging module independently developed by the team

Source: opticsky

İlgili öneriler
  • From Colored Glass Windows to Lasers: Nanogold Changes Light

    For a long time, craftsmen have been fascinated by the bright red color produced by gold nanoparticles scattered in colored glass masterpieces. The quantum origin of this optical miracle has always been mysterious, until modern advances in nanoengineering and microscopy revealed the complexity of plasma resonance.Now, researchers are preparing to push nano plasma technology, which was once used fo...

    2024-01-02
    Çeviriyi gör
  • New Progress: III-V Laser and Silicon Optics Technology Achieve Single Chip High Integration

    Recently, Scientific Photonics, a supplier of silicon photonic integrated circuits (PICs) headquartered in Grenoble, announced that it has successfully integrated III-V-DFB lasers and amplifiers with standard silicon photonic technology into the production process of Tower Semiconductor.By utilizing proprietary technology and standard silicon photonics, Scientific Photonics has achieved full inte...

    2024-03-01
    Çeviriyi gör
  • Researchers from Columbia University in New York reported the latest research on reverse laser sintering of metal powders

    Researchers from Columbia University in New York reported the latest research on reverse laser sintering of metal powders. The related achievements were published in Scientific Reports under the title "Invested laser sintering of metal powder".The researchers demonstrated the ability of reverse laser sintering technology to manufacture metal powder parts. Researchers first deposit a layer of coppe...

    2024-01-29
    Çeviriyi gör
  • Semiconductor lasers will support both TE and TM modes

    Typically, for lasers in optical communication systems, waveguide designs are used to achieve a single transverse mode. By adjusting the thickness of the surrounding area of the cladding layer and the etching depth of the ridge in the ridge waveguide device, a single mode device can be obtained. The importance of lasers is reflected in the following aspects:A chip without ridge waveguide design an...

    2023-10-20
    Çeviriyi gör
  • The Institute of Physics, Chinese Academy of Sciences has made significant progress in the research of lithium niobate nanooptics

    In recent years, breakthroughs in the preparation technology of lithium niobate single crystal thin films have greatly promoted the important application of lithium niobate crystals in micro nano optical devices such as optical metasurfaces. However, the high hardness and inactive chemical properties of lithium niobate crystals pose significant challenges to micro nano processing; In addition, con...

    bir gün önce
    Çeviriyi gör