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Multi-technology design of an integrated MEMS-based RF oscillator using a novel silicon-ceramic compound substrate

机译:使用新型硅陶瓷复合衬底的基于MEMS的集成RF振荡器的多技术设计

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In this paper, an approach towards the realization of a hybrid MEMS-CMOS RF oscillator module using the novel silicon-ceramic (SiCer) compound substrate technology is described. Piezoelectric aluminium-nitride MEMS resonators with quality factors Q up to 2,200 and resonant frequencies of 240, 400 and 600 MHz have been investigated as frequency-selective elements. For RF-compatible hybrid-integrated assembly and packaging, the SiCer compound substrate has been adapted, promising an efficient integration of both, microelectronic and micromechanical devices, on a single carrier substrate. Multiphysical circuit design and simulations using parametrized behavioural MEMS models have been carried out, indicating stable oscillator operation at the design frequency. As one prospective application, such an oscillator module could form part of a compact and power-efficient reconfigurable RF transceiver frontend in SiCer technology, e.g., for mobile communications.
机译:在本文中,描述了一种使用新型硅陶瓷(SiCer)复合衬底技术实现混合MEMS-CMOS RF振荡器模块的方法。作为频率选择元件,已经研究了质量因数Q最高为2,200且谐振频率为240、400和600 MHz的压电氮化铝MEMS谐振器。对于兼容RF的混合集成组装和封装,已对SiCer复合衬底进行了改装,从而有望将微电子和微机械设备有效地集成在单个载体衬底上。已经进行了使用参数化行为MEMS模型的多物理场电路设计和仿真,表明振荡器在设计频率下稳定运行。作为一种潜在的应用,这样的振荡器模块可以形成例如用于移动通信的SiCer技术中的紧凑且省电的可重构RF收发器前端的一部分。

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