论文标题

薄膜硅锂中毫米波光学调制性能的系统研究

Systematic Investigation of Millimeter-Wave Optic Modulation Performance in Thin-Film Lithium Niobate

论文作者

Zhang, Yiwen, Shao, Linbo, Yang, Jingwei, Chen, Zhaoxi, Zhang, Ke, Shum, Kam-Man, Zhu, Di, Chan, Chi Hou, Lončar, Marko, Wang, Cheng

论文摘要

毫米波(MMWave)频段(30-300 GHz)是无线通信,短距离雷达和传感器应用的新兴频谱范围。可以有效地将MMWave信号转换为光学结构域的MMWave-Octic调制器是通过光网络长途传输MMWave信号的关键组件。但是,在这些超高频率下,调制性能对传输线损失以及速度和阻抗匹配条件高度敏感,而这些参数的精确测量和建模通常是不平凡的。在这里,我们通过理论建模,电验证和电磁测量值以最高325 GHz的频率,对薄膜硅锂调节剂的MMWave-optic调制性能进行系统研究。基于我们的实验验证模型,我们证明了薄膜硅锂MMMWave-Octic调节器,其测量的3-DB电容带宽为170 GHz,6-DB带宽为295 GHz。该设备还显示了以250 GHz的超高调制频率测量的7.3 V的低RF半波电压。这项工作为MMWave-Octic调制器的设计和表征提供了全面的指南,并为未来的集成MMWave光子系统铺平了道路,以超越5G通信和雷达应用。

Millimeter-wave (mmWave) band (30 - 300 GHz) is an emerging spectrum range for wireless communication, short-range radar and sensor applications. mmWave-optic modulators that could efficiently convert mmWave signals into optical domain are crucial components for long-haul transmission of mmWave signals through optical networks. At these ultrahigh frequencies, however, the modulation performances are highly sensitive to the transmission line loss as well as the velocity- and impedance-matching conditions, while precise measurements and modeling of these parameters are often non-trivial. Here we present a systematic investigation of the mmWave-optic modulation performances of thin-film lithium niobate modulators through theoretical modeling, electrical verifications and electro-optic measurements at frequencies up to 325 GHz. Based on our experimentally verified model, we demonstrate thin-film lithium niobate mmWave-optic modulators with a measured 3-dB electro-optic bandwidth of 170 GHz and a 6-dB bandwidth of 295 GHz. The device also shows a low RF half-wave voltage of 7.3 V measured at an ultrahigh modulation frequency of 250 GHz. This work provides a comprehensive guideline for the design and characterization of mmWave-optic modulators and paves the way toward future integrated mmWave photonic systems for beyond-5G communication and radar applications.

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