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具有时间边界镜的法布里-珀罗谐振器中的共振增强光谱漏斗效应。

Resonance-enhanced spectral funneling in Fabry-Perot resonators with a temporal boundary mirror.

作者信息

Lee Kanghee, Park Junho, Lee Seojoo, Baek Soojeong, Park Jagang, Rotermund Fabian, Min Bumki

机构信息

Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

出版信息

Nanophotonics. 2022 Jan 12;11(9):2045-2055. doi: 10.1515/nanoph-2021-0667. eCollection 2022 Apr.

Abstract

A temporal boundary refers to a specific time at which the properties of an optical medium are abruptly changed. When light interacts with the temporal boundary, its spectral content can be redistributed due to the breaking of continuous time-translational symmetry of the medium where light resides. In this work, we use this principle to demonstrate, at terahertz (THz) frequencies, the resonance-enhanced spectral funneling of light coupled to a Fabry-Perot resonator with a temporal boundary mirror. To produce a temporal boundary effect, we abruptly increase the reflectance of a mirror constituting the Fabry-Perot resonator and, correspondingly, its quality factor in a step-like manner. The abrupt increase in the mirror reflectance leads to a trimming of the coupled THz pulse that causes the pulse to broaden in the spectral domain. Through this dynamic resonant process, the spectral contents of the input THz pulse are redistributed into the modal frequencies of the high- Fabry-Perot resonator formed after the temporal boundary. An energy conversion efficiency of up to 33% was recorded for funneling into the fundamental mode with a Fabry-Perot resonator exhibiting a sudden -factor change from 4.8 to 48. We anticipate that the proposed resonance-enhanced spectral funneling technique could be further utilized in the development of efficient mechanically tunable narrowband terahertz sources for diverse applications.

摘要

时间边界是指光学介质特性发生突然变化的特定时刻。当光与时间边界相互作用时,由于光所在介质的连续时间平移对称性被打破,其光谱内容会重新分布。在这项工作中,我们利用这一原理,在太赫兹(THz)频率下,展示了与具有时间边界镜的法布里-珀罗谐振器耦合的光的共振增强光谱漏斗效应。为了产生时间边界效应,我们以阶梯状方式突然增加构成法布里-珀罗谐振器的镜子的反射率,相应地增加其品质因数。镜子反射率的突然增加导致耦合太赫兹脉冲被修整,从而使脉冲在光谱域中展宽。通过这个动态共振过程,输入太赫兹脉冲的光谱内容被重新分布到时间边界后形成的高法布里-珀罗谐振器的模式频率中。对于法布里-珀罗谐振器,品质因数从4.8突然变为48,在向基模的漏斗效应中记录到高达33%的能量转换效率。我们预计,所提出的共振增强光谱漏斗技术可进一步用于开发适用于各种应用的高效机械可调窄带太赫兹源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8078/11501943/8e36eb829d99/j_nanoph-2021-0667_fig_001.jpg

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