Fan Gao , Xin Zhou , Lu Tao Lu , Juan Deng , Bo Yan
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引用次数: 0
Abstract
Metasurfaces have emerged as crucial materials for optical information encryption and storage, lauded for their ease of operation and high programmability. However, the inherent inflexibility following metasurface fabrication leaves room for improvement in terms of information storage capacity. Incorporating multiplexed channels in metasurface boasts independent coding degrees of freedom, which bolsters the utility of metasurfaces for optical information storage and encryption. Most multiplexed metasurfaces conventionally rely on optical variables that can be controlled, such as wavelength, orbital angular momentum (OAM), forward/backward incidence of light, and polarization state, etc. However, there has been limited attention given to the inherent spatial properties of metasurfaces, let alone to combine these spatial properties with optical variables for multiplexing. To address this gap, we proposes a combined approach to develop a nanoprinting and meta-holography metasurface, which harnesses both metasurface-space and angular multiplexing to store seven independent holographic and nanoprinted images. This work not only unlocks new avenues for advanced optical information storage and encryption, but also pushes the boundaries of metasurface technology.
Results in PhysicsMATERIALS SCIENCE, MULTIDISCIPLINARYPHYSIC-PHYSICS, MULTIDISCIPLINARY
CiteScore
8.70
自引率
9.40%
发文量
754
审稿时长
50 days
期刊介绍:
Results in Physics is an open access journal offering authors the opportunity to publish in all fundamental and interdisciplinary areas of physics, materials science, and applied physics. Papers of a theoretical, computational, and experimental nature are all welcome. Results in Physics accepts papers that are scientifically sound, technically correct and provide valuable new knowledge to the physics community. Topics such as three-dimensional flow and magnetohydrodynamics are not within the scope of Results in Physics.
Results in Physics welcomes three types of papers:
1. Full research papers
2. Microarticles: very short papers, no longer than two pages. They may consist of a single, but well-described piece of information, such as:
- Data and/or a plot plus a description
- Description of a new method or instrumentation
- Negative results
- Concept or design study
3. Letters to the Editor: Letters discussing a recent article published in Results in Physics are welcome. These are objective, constructive, or educational critiques of papers published in Results in Physics. Accepted letters will be sent to the author of the original paper for a response. Each letter and response is published together. Letters should be received within 8 weeks of the article''s publication. They should not exceed 750 words of text and 10 references.