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Metasurface-based holography provides tremendous advances in multi-dimensional detection, super-resolution imaging, and cryptography applications. Current mainstream researches on holographic metasurface are primarily focused on exploring degrees of freedom to enhance information multiplexing capability. Nevertheless, from the information security point of view, it is necessary to integrate existing available freedom resources, such as multi-polarization components, to enhance the security of holographic encryption. Herein, a full-polarimetric synthetization scheme is proposed for holographic displaying to develop a novel approach for information and imaging encryption. By exploiting chirality-assisted metasurface as the implementation platform, quadruplex circular polarization components are independently phase-modulated with separate holographic sub-imaging. For an intuitive demonstration, linear polarization is set as the encoded state to acquire the synthesized intensity image with "HIT" characters. Hence, the output holographic information in transmission field can be successfully distinguished with the valid polarization. Additionally, the sensitivity and robustness property of the synthesized holographic performance is experimentally evaluated against ergodic elliptical polarization states, where the optimal performance of working efficiency and signal-to-noise ratio only appear under the preset linear polarizations. These results effectively prove the feasibility of the polarization integration hologram, opening the door to novel solutions for future full-polarimetric encryption strategies.
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http://dx.doi.org/10.1002/smsc.202400138 | DOI Listing |
Opt Express
July 2025
Deep learning-based generative models for computer-generated hologram (CGH) have proven effective in overcoming the challenge of limited holographic data. However, most existing models, including VAE, GAN-Holo, and diffusion models, use real-valued convolution kernels, which fail to fully capture the complexity of optical field waves. To address this issue, we propose the complex amplitude hologram variational autoencoder (CAHVAE), what we believe to be a novel approach specifically designed for synthesizing complex amplitude holograms.
View Article and Find Full Text PDFCommun Eng
June 2025
School of Physics, University of Electronic Science and Technology of China, Chengdu, China.
The manipulation of electromagnetic (EM) waves is important in diverse fields such as microwave sensing and wireless communication. Spatio-temporal synthesis, in particular, has attracted growing interest in recent years. Several related approaches have been explored, but their huge computational burden confines them to low-dimensional EM field synthesis.
View Article and Find Full Text PDFMetasurface-based holography provides tremendous advances in multi-dimensional detection, super-resolution imaging, and cryptography applications. Current mainstream researches on holographic metasurface are primarily focused on exploring degrees of freedom to enhance information multiplexing capability. Nevertheless, from the information security point of view, it is necessary to integrate existing available freedom resources, such as multi-polarization components, to enhance the security of holographic encryption.
View Article and Find Full Text PDFAcc Chem Res
April 2025
State Key Laboratory of Petroleum Molecular & Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, Shanghai Frontiers Science Center of Molecule Intelligent Syntheses, School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, P.
ConspectusFluorescence by small molecular dyes is renowned for its real-time, dynamic, and noninvasive nature. It has become indispensable across scientific domains, including information storage, optoelectronic materials, biosensing, and both diagnosing and treating diseases. Despite their widespread use, these molecular dyes suffer from several limitations due to the sensitivity of their photophysical properties to environmental factors, such as concentration, solvent composition, and polarity.
View Article and Find Full Text PDFA single-shot phase diversity phase retrieval (PDPR) method is proposed utilizing a synthetic computer-generated hologram (CGH). This CGH is designed by synthesizing two phases derived from the decomposition of a complex-amplitude hologram that encodes low-order Lukosz aberration modes. The synthetic CGH introduces multiple phase diversities, enabling the reconstruction of diverse images with high fidelity at the focal plane.
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