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A new method for the analysis of movement dependent parasitics in full custom designed MEMS sensors

机译:全定制设计MEMS传感器中运动依赖性寄生剂分析的新方法

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Due to the lack of sophisticated microelectrome-chanical systems (MEMS) component libraries, highly optimized MEMS sensors are currently designed using a polygon driven design flow. The strength of this design flow is the accurate mechanical simulation of the polygons by finite element (FE) modal analysis. The result of the FE-modal analysis is included in the system model together with the data of the (mechanical) static electrostatic analysis. However, the system model lacks the dynamic parasitic electrostatic effects, arising from the electric coupling between the wiring and the moving structures. In order to include these effects in the system model, we present a method which enables the quasi dynamic parasitic extraction with respect to in-plane movements of the sensor structures. The method is embedded in the polygon driven MEMS design flow using standard EDA tools. In order to take the influences of the fabrication process into account, such as etching process variations, the method combines the FE-modal analysis and the fabrication process simulation data. This enables the analysis of dynamic changing electrostatic parasitic effects with respect to movements of the mechanical structures. Additionally, the result can be included into the system model allowing the simulation of positive feedback of the electrostatic parasitic effects to the mechanical structures.
机译:由于缺乏复杂的微电体 - 螯合系统(MEMS)组分文库,目前使用多边形驱动设计流程设计高度优化的MEMS传感器。这种设计流程的强度是通过有限元(Fe)模态分析来精确机械模拟多边形。 FE模型分析的结果与(机械)静态静电分析的数据一起包括在系统模型中。然而,系统模型缺乏动态寄生静电效应,从布线和移动结构之间的电耦合产生。为了在系统模型中包括这些效果,我们提出了一种方法,该方法使得拟动形寄生提取相对于传感器结构的面内运动。该方法嵌入在多边形驱动的MEMS设计流中,使用标准EDA工具。为了考虑制造过程的影响,例如蚀刻工艺变化,该方法结合了Fe模态分析和制造过程模拟数据。这使得能够在机械结构的运动方面分析动态改变静电寄生效应。另外,该结果可以包括在系统模型中,允许模拟静电寄生效应的正反馈到机械结构。

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