由三个不同波长的激光源组成全息存储器,用于光学重构

IF 0.9 4区 物理与天体物理 Q4 OPTICS
Akifumi Ogiwara, Minoru Watanabe
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引用次数: 0

摘要

提出了一种利用三种不同波长的激光源形成由液晶复合材料组成的体积周期结构全息存储器的光学装置。利用偏光显微镜和扫描电镜对不同波长形成的全息光栅进行了结构分析。干涉条纹与体积周期结构之间的周期间隔随着激光波长的减小而减小。利用基于空间光布线的并行处理技术,所制备的全息存储器可用于光可重构门阵列(ORGAs)中电路信息的记录和重构。各种激光波长的干涉曝光光学系统的发展,包括短波长的蓝色激光,对于提高全息存储器的容量,使其内部晶格结构小型化是非常重要的。所制备的全息存储器通过在不同的激光波长之间切换,能够准确地记录和重建电路信息模式。建立有机硅全息存储系统是开发高可靠性领域的抗辐射器件的必要条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Holographic memory formed by three laser sources with different wavelengths for application to optical reconfiguration

An optical setup using three laser sources with different wavelengths was proposed for the formation of a holographic memory consisting of volumetric periodic structures using liquid–crystal composites. Structural analysis of the holographic gratings formed at different wavelengths was performed using polarizing optical microscopy and scanning electron microscopy. The periodic interval between the interference fringes and the volumetric periodic structures decreased with a decrease in the wavelength of the laser used in the fabrication process. The fabricated holographic memory can be used to record and reconstruct circuit information in optically reconfigurable gate arrays (ORGAs) by applying parallel processing techniques based on spatial light wiring. The development of interference exposure optical systems for various laser wavelengths, including blue lasers with short wavelengths, is extremely important for improving the capacity of holographic memory by miniaturizing its internal lattice structure. The fabricated holographic memory demonstrated the ability to accurately record and reconstruct circuit information patterns by switching between different laser wavelengths. Establishing a holographic memory system for ORGAs is essential for developing radiation-resistant devices that can be used in fields requiring high reliability.

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来源期刊
Optical Review
Optical Review 物理-光学
CiteScore
2.30
自引率
0.00%
发文量
62
审稿时长
2 months
期刊介绍: Optical Review is an international journal published by the Optical Society of Japan. The scope of the journal is: General and physical optics; Quantum optics and spectroscopy; Information optics; Photonics and optoelectronics; Biomedical photonics and biological optics; Lasers; Nonlinear optics; Optical systems and technologies; Optical materials and manufacturing technologies; Vision; Infrared and short wavelength optics; Cross-disciplinary areas such as environmental, energy, food, agriculture and space technologies; Other optical methods and applications.
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