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Multi-wavelength diffraction imaging is a lensless, high-resolution imaging technology. To avoid multiple exposures and enable high-speed data collection, here an innovative setup for the single-exposure multi-wavelength diffraction imaging based on a blazed grating is proposed. Since the blazed angle varies with the wavelength, the diffraction patterns for the individual wavelengths can be separated from each other and recorded in a single measurement at one time. A method of high-precision position alignment between different wavelength patterns is proposed in our system to achieve good image quality and high resolution. Experiments on a phase-only USAF resolution target and biological samples were carried out to verify the effectiveness of our proposed method. This proposed setup has such advantages as a simpler structure, fast recording, and algorithm robustness.
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http://dx.doi.org/10.1364/OL.440336 | DOI Listing |
Nanophotonics
August 2025
School of Science, Minzu University of China, Beijing 100081, China.
Optical neural networks (ONNs) have demonstrated unique advantages in overcoming the limitations of traditional electronic computing through their inherent physical properties, including high parallelism, ultra-wide bandwidth, and low power consumption. As a crucial implementation of ONNs, on-chip diffractive optical neural network (DONN) offers an effective solution for achieving highly integrated and energy-efficient machine learning tasks. Notably, wavelength, as a fundamental degree of freedom in optical field manipulation, exhibits multidimensional multiplexing capabilities that can significantly enhance computational parallelism.
View Article and Find Full Text PDFLight Sci Appl
August 2025
Major of Electrical Engineering, College of Engineering, Pukyong National University, Busan, 48513, Republic of Korea.
Since flat optics has the feature to implement a compact system, they are widely used in various applications to replace bulky refractive optics. However, they suffer from chromatic aberrations due to dispersion, limiting their effectiveness to a narrow wavelength range. Consequently, diffractive optics has been applied for dynamic beam steering within a specific wavelength region or for static steering across multiple wavelengths.
View Article and Find Full Text PDFMode-division multiplexing (MDM) technology has supported breakthroughs in ultra-high-capacity optical interconnects and optical communication systems. In wavelength and mode-hybrid multiplexing systems, broadband mode converters are crucial for optical chips, fibers, and free-space optical communication (FSOC) systems. Mode converters based on multi-plane cascaded diffractive neural networks (DNN) have attracted widespread attention due to their high degrees of freedom.
View Article and Find Full Text PDFAugmented reality head-mounted displays (AR-HMDs) utilizing diffractive waveguides have attracted considerable research attention. However, addressing color non-uniformity remains a key challenge in full-color waveguide displays employing volume holographic gratings (VHGs). This paper proposes an AR full-color waveguide display system addressing color non-uniformity.
View Article and Find Full Text PDFWe design, manufacture, and characterize a high-numerical-aperture ( =0.88, /0.27), multi-wavelength (480 nm, 550 nm, and 650 nm) multilevel diffractive microlens array (MLA).
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