太赫兹集成光子器件的现状与未来

IF 5.4 1区 物理与天体物理 Q1 OPTICS
APL Photonics Pub Date : 2023-08-01 DOI:10.1063/5.0146912
S. Rajabali, Ileana-Cristina Benea-Chelmus
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引用次数: 2

摘要

光子集成电路使自然科学的许多领域受益。他们的纳米级图案导致了从紫外线到微波的新型光源和探测器的发现。然而,到目前为止,太赫兹技术几乎没有利用光子集成电路提供的设计和材料自由度。尽管光电导(光在半导体带隙上方被吸收以产生自由载流子的过程)和非线性上下转换是迄今为止产生和检测太赫兹波的两种最广泛的方法,但到目前为止,太赫兹技术大多被大量使用。从这个角度来看,我们讨论了混合光学太赫兹光子芯片的当前技术、挑战和前景。我们特别关注χ(2)和χ(3)非线性波导以及波导集成光电导器件。我们强调了在波导几何结构和印刷天线的微观和宏观设计中优化太赫兹波发射和检测效率的机会。通过与电信和光纤技术兼容的集成和小型化,可以在单个芯片上实现太赫兹光子的复杂功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Present and future of terahertz integrated photonic devices
Photonic integrated circuits have benefited many fields in the natural sciences. Their nanoscale patterning has led to the discovery of novel sources and detectors from ultraviolet to microwaves. Yet terahertz technologies have so far leveraged surprisingly little of the design and material freedom provided by photonic integrated circuits. Despite photoconduction—the process in which light is absorbed above the bandgap of a semiconductor to generate free carriers—and nonlinear up- and down-conversion being by far the two most widespread approaches to generate and detect terahertz waves, so far, terahertz technologies have been mostly employed in bulk. In this perspective, we discuss the current state-of-the-art, challenges, and perspectives for hybrid optical-terahertz photonic chips. We focus, in particular, on χ(2) and χ(3) nonlinear waveguides and waveguide-integrated photoconductive devices. We highlight opportunities in the micro- and macroscale design of waveguide geometries and printed antennas for the optimization of emission and detection efficiencies of terahertz waves. Realizing complex functionalities for terahertz photonics on a single chip may come into reach by integration and miniaturization compatible with telecom and fiber technologies.
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来源期刊
APL Photonics
APL Photonics Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
10.30
自引率
3.60%
发文量
107
审稿时长
19 weeks
期刊介绍: APL Photonics is the new dedicated home for open access multidisciplinary research from and for the photonics community. The journal publishes fundamental and applied results that significantly advance the knowledge in photonics across physics, chemistry, biology and materials science.
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