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基于非线性微机电系统谐振器的可控多通道声光调制器和频率合成器。

Controllable multichannel acousto-optic modulator and frequency synthesizer enabled by nonlinear MEMS resonator.

作者信息

Pillai Gayathri, Li Sheng-Shian

机构信息

Institute of NanoEngineering and MicroSystems, National Tsing Hua University, Hsinchu City, Taiwan.

Department of Power Mechanical Engineering, National Tsing Hua University, Hsinchu City, Taiwan.

出版信息

Sci Rep. 2021 May 25;11(1):10898. doi: 10.1038/s41598-021-90248-w.

Abstract

Nonlinear physics-based harmonic generators and modulators are critical signal processing technologies for optical and electrical communication. However, most optical modulators lack multi-channel functionality while frequency synthesizers have deficient control of output tones, and they additionally require vacuum, complicated setup, and high-power configurations. Here, we report a piezoelectrically actuated nonlinear Microelectromechanical System (MEMS) based Single-Input-Multiple-Output multi-domain signal processing unit that can simultaneously generate programmable parallel information channels (> 100) in both frequency and spatial domain. This significant number is achieved through the combined electromechanical and material nonlinearity of the Lead Zirconate Titanate thin film while still operating the device in an ambient environment at Complementary-Metal-Oxide-Semiconductor compatible voltages. By electrically detuning the operation point along the nonlinear regime of the resonator, the number of electrical and light-matter interaction signals generated based on higher-order non-Eigen modes can be controlled meticulously. This tunable multichannel generation enabled microdevice is a potential candidate for a wide variety of applications ranging from Radio Frequency communication to quantum photonics with an attractive MEMS-photonics monolithic integration ability.

摘要

基于非线性物理的谐波发生器和调制器是光通信和电通信中关键的信号处理技术。然而,大多数光调制器缺乏多通道功能,而频率合成器对输出音调的控制不足,并且它们还需要真空环境、复杂的设置和高功率配置。在此,我们报道了一种基于压电驱动的非线性微机电系统(MEMS)的单输入多输出多域信号处理单元,它能够在频率和空间域中同时生成可编程的并行信息通道(>100个)。这一可观的数量是通过锆钛酸铅薄膜的机电和材料非线性的结合实现的,同时该器件仍在互补金属氧化物半导体兼容电压下的环境中运行。通过沿谐振器的非线性区域对工作点进行电调谐,可以精确控制基于高阶非本征模式产生的电和光-物质相互作用信号的数量。这种具有可调谐多通道生成功能的微型器件凭借其吸引人的MEMS-光子学单片集成能力,是从射频通信到量子光子学等各种应用的潜在候选者。

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