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RF-MEMS Monolithic K and Ka Band Multi-State Phase Shifters as Building Blocks for 5G and Internet of Things (IoT) Applications

机译:RF-MEMS单片K和Ka频段多状态移相器是5G和物联网(IoT)应用的基础

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摘要

RF-MEMS, i.e., Micro-Electro-Mechanical Systems (MEMS) for Radio Frequency (RF) passive components, exhibit interesting characteristics for the upcoming 5G and Internet of Things (IoT) scenarios, in which reconfigurable broadband and frequency-agile devices, like high-order switching units, tunable filters, multi-state attenuators, and phase shifters will be necessary to enable mm-Wave services, small cells, and advanced beamforming. In particular, satellite communication systems providing high-speed Internet connectivity utilize the K and Ka bands, which offer larger bandwidth compared to lower frequencies. This paper focuses on two design concepts of multi-state phase shifter designed and manufactured in RF-MEMS technology. The networks feature 4 switchable stages (16 states) and are developed for the K and Ka bands. The proposed phase shifters are realized in a surface micromachining RF-MEMS technology and the experimentally measured parameters are compared with Finite Element Method (FEM) multi-physical electromechanical and RF simulations. The simulated phase shifts at both the operating bands fit well the measured value, despite the measured losses (S21) are larger than 5–7 dB if compared to simulations. However, such a non-ideality has a technological motivation that is explained in the paper and that will be fixed in the manufacturing of future devices.
机译:RF-MEMS,即用于射频(RF)无源组件的微机电系统(MEMS),在即将到来的5G和物联网(IoT)场景中展现出有趣的特性,其中可重新配置的宽带和频率捷变设备,例如高阶开关单元,可调滤波器,多状态衰减器和移相器,对于启用毫米波服务,小型蜂窝和先进的波束成形将是必不可少的。特别是,提供高速Internet连接的卫星通信系统利用K和Ka频段,与较低的频率相比,它们提供了更大的带宽。本文重点介绍了采用RF-MEMS技术设计和制造的多态移相器的两个设计概念。该网络具有4个可切换级(16个状态),并针对K和Ka频段而开发。提出的移相器是通过表面微加工RF-MEMS技术实现的,并将实验测量的参数与有限元方法(FEM)的多物理机电和RF仿真进行了比较。尽管与模拟相比,尽管测得的损耗(S21)大于5–7 dB,但两个工作频带上的模拟相移都非常适合测量值。但是,这种不理想的技术动机已在本文中进行了说明,并将在以后的设备制造中得到解决。

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