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用于调频连续波激光雷达的连续绝热频率转换

Continuous adiabatic frequency conversion for FMCW-LiDAR.

作者信息

Mrokon Alexander, Oehler Johanna, Breunig Ingo

机构信息

Laboratory for Optical Systems, Department of Microsystems Engineering - IMTEK, University of Freiburg, Georges-Köhler-Allee 102, Freiburg, 79110, Germany.

Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Köhler-Allee 301, Freiburg, 79110, Germany.

出版信息

Sci Rep. 2024 Feb 29;14(1):4990. doi: 10.1038/s41598-024-55687-1.

Abstract

Continuous tuning of the frequency of laser light serves as the fundamental basis for a myriad of applications spanning basic scientific research to industrial settings. These applications encompass endeavors such as the detection of gravitational waves, the development of precise optical clocks, environmental monitoring for health and ecological purposes, as well as distance measurement techniques. However, achieving a broad tuning range exceeding 100 GHz along with sub-microsecond tuning times, inherent linearity in tuning, and coherence lengths beyond 10 m presents significant challenges. Here, we demonstrate that electro-optically driven adiabatic frequency converters utilizing high-Q microresonators fabricated from lithium niobate possess the capability to convert arbitrary voltage signals into frequency chirps with temporal resolutions below 1 µs. The temporal evolution of the frequency correlates accurately with the applied voltage signal. We have achieved to generate 200-ns-long frequency chirps with deviations of less than 1 % from perfect linearity without requiring supplementary measures. The coefficient of determination is . Moreover, the coherence length of the emitted light exceeds 20 m. To validate these findings, we employ the linear frequency sweeps for Frequency-Modulated Continuous Wave (FMCW) LiDAR covering distances ranging from 0.5 to 10 m. Leveraging the demonstrated nanosecond-level tuning capabilities, coupled with the potential to tune the eigenfrequency of lithium-niobate-based resonators by several hundred GHz, our results show that electro-optically driven adiabatic frequency converters can be used in applications that require ultrafast and flexible continuous frequency tuning characterized by inherent linearity and substantial coherence length.

摘要

激光频率的连续调谐是从基础科学研究到工业应用等众多应用的基本基础。这些应用包括引力波探测、精密光学时钟的开发、出于健康和生态目的的环境监测以及距离测量技术等。然而,要实现超过100 GHz的宽调谐范围、亚微秒级的调谐时间、固有的调谐线性以及超过10 m的相干长度,存在重大挑战。在此,我们证明,利用由铌酸锂制成的高Q微谐振器的电光驱动绝热变频器能够将任意电压信号转换为时间分辨率低于1 µs的频率啁啾。频率的时间演变与施加的电压信号精确相关。我们已实现产生200 ns长的频率啁啾,与完美线性的偏差小于1%,无需额外措施。决定系数为 。此外,发射光的相干长度超过20 m。为验证这些发现,我们将线性频率扫描用于调频连续波(FMCW)激光雷达,测量距离范围为0.5至10 m。利用所展示的纳秒级调谐能力,以及将基于铌酸锂的谐振器的本征频率调谐数百GHz的潜力,我们的结果表明,电光驱动绝热变频器可用于需要超快且灵活的连续频率调谐、具有固有线性和显著相干长度的应用中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f544/10904768/4559de753df3/41598_2024_55687_Fig1_HTML.jpg

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