论文标题

片上连贯的频域Thz光谱,用于电运输

On-chip coherent frequency-domain THz spectroscopy for electrical transport

论文作者

Yoshioka, Katsumasa, Kumada, Norio, Muraki, Koji, Hashisaka, Masayuki

论文摘要

我们基于连续波(CW)激光光谱法开发了在超单生频率范围内从200 MHz到1.6 THz的Coplanar波导的连贯频域THZ光谱技术。通过混合两个频率可调节的CW激光器而产生的光击则集中在光电传输开关上,以生成和检测THZ电路中的高频电流。与时域光谱法相反,我们的频谱光谱法实现了10 MHz的前所未有的频率分辨率,而无需使用复杂的飞秒激光光学元件。此外,由于光电技术的连贯性质,我们能够使用希尔伯特分析和逆傅立叶变换来识别时域中多个反射的起源。这些结果表明,片上相干频域光谱的优势,例如其宽带,频率分辨率,可用性和时间域可及性,为测量集成THZ电路中的超快电子传输提供了独特的功能。

We developed a coherent frequency-domain THz spectroscopic technique on a coplanar waveguide in the ultrabroad frequency range from 200 MHz to 1.6 THz based on continuous wave (CW) laser spectroscopy. Optical beating created by mixing two frequency-tunable CW lasers is focused on photoconductive switches to generate and detect high-frequency current in a THz circuit. In contrast to time-domain spectroscopy, our frequency-domain spectroscopy enables unprecedented frequency resolution of 10 MHz without using complex building blocks of femtosecond laser optics. Furthermore, due to the coherent nature of the photomixing technique, we are able to identify the origin of multiple reflections in the time domain using the Hilbert analysis and inverse Fourier transform. These results demonstrate that the advantages of on-chip coherent frequency-domain spectroscopy, such as its broadband, frequency resolution, usability, and time-domain accessibility, provide a unique capability for measuring ultrafast electron transport in integrated THz circuits.

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