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光子晶体触发器:全光存储组件的最新进展

Photonic Crystal Flip-Flops: Recent Developments in All Optical Memory Components.

作者信息

Pugachov Yonatan, Gulitski Moria, Malka Dror

机构信息

Faculty of Engineering, Holon Institute of Technology (HIT), Holon 5810201, Israel.

出版信息

Materials (Basel). 2023 Sep 28;16(19):6467. doi: 10.3390/ma16196467.

Abstract

This paper reviews recent advancements in all-optical memory components, particularly focusing on various types of all-optical flip-flops (FFs) based on photonic crystal (PC) structures proposed in recent years. PCs, with their unique optical properties and engineered structures, including photonic bandgap control, enhanced light-matter interaction, and compact size, make them especially suitable for optical FFs. The study explores three key materials, silicon, chalcogenide glass, and gallium arsenide, known for their high refractive index contrast, compact size, hybrid integration capability, and easy fabrication processes. Furthermore, these materials exhibit excellent compatibility with different technologies like CMOS and fiber optics, enhancing their versatility in various applications. The structures proposed in the research leverage mechanisms such as waveguides, ring resonators, scattering rods, coupling rods, edge rods, switches, resonant cavities, and multi-mode interference. The paper delves into crucial properties and parameters of all-optical FFs, including response time, contrast ratio, and operating wavelength. Optical FFs possess significant advantages, such as high speed, low power consumption, and potential for integration, making them a promising technology for advancing optical computing and optical memory systems.

摘要

本文回顾了全光存储组件的最新进展,特别关注近年来基于光子晶体(PC)结构提出的各种类型的全光触发器(FF)。光子晶体具有独特的光学特性和经过设计的结构,包括光子带隙控制、增强的光与物质相互作用以及紧凑的尺寸,使其特别适用于光学触发器。该研究探索了三种关键材料,硅、硫系玻璃和砷化镓,它们以高折射率对比度、紧凑尺寸、混合集成能力和易于制造工艺而闻名。此外,这些材料与CMOS和光纤等不同技术具有出色的兼容性,增强了它们在各种应用中的通用性。研究中提出的结构利用了诸如波导、环形谐振器、散射棒、耦合棒、边缘棒、开关、谐振腔和多模干涉等机制。本文深入探讨了全光触发器的关键特性和参数,包括响应时间、对比度和工作波长。光学触发器具有显著优势,如高速、低功耗和集成潜力,使其成为推进光学计算和光学存储系统的一项有前途的技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aad7/10573204/2f8b22c9a6da/materials-16-06467-g001.jpg

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