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SPICE-Based Multiphysics Model to Analyze the Dynamics of Ferroelectric Negative-Capacitance–Electrostatic MEMS Hybrid Actuators

机译:基于SPICE的多体性模型分析铁电负电容 - 静电MEMS混合动力致动器的动态

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We propose a Simulation Program with Integrated Circuit Emphasis (SPICE)-based multiphysics framework to model ferroelectric negative-capacitance–electrostatic microelectromechanical systems (MEMS) hybrid actuators. Our approach couples the nonlinear dynamics of both the ferroelectric capacitor and the MEMS actuator. Using this framework, we examine the dynamic response and the energy consumed during pull-in switching of the hybrid actuator. We predict a significant reduction in the dynamic pull-in and pull-out voltages and the energy consumed by the hybrid actuator compared with the standalone MEMS actuator. We also predict that the pull-in time of the hybrid actuator is, however, larger than that of the standalone actuator. Nevertheless, we show that one can tradeoff a small part of the reduction in actuation voltage to achieve identical pull-in times in the hybrid and standalone MEMS actuators while still consuming substantially lower energy in the former compared with the latter. Our analysis approach is compatible with standard circuit simulators and is, hence, suitable for analysis and evaluation of various heterogeneous systems consisting of hybrid MEMS actuators and other electronic devices.
机译:我们提出了一种具有集成电路强调(SPICE)的仿真程序的模拟程序,用于模拟铁电负电容 - 静电微机电系统(MEMS)混合动力致动器。我们的方法耦合了铁电电容器和MEMS执行器的非线性动力学。使用本框架,我们检查混合动力执行器的拉动过程中的动态响应和消耗的能量。与独立的MEMS执行器相比,我们预测动态拉入和拉出电压的显着降低以及混合动力执行器所消耗的能量。然而,我们还预测混合动力致动器的拉出时间大于独立致动器的拉动时间。然而,我们表明,可以在混合动力和独立的MEMS执行器中进行致动电压降低的一小部分,以实现混合动力和独立MEMS致动器的相同拉动时间,同时与后者相比仍然消耗前方的能量。我们的分析方法与标准电路模拟器兼容,因此适用于分析和评估由混合MEMS执行器和其他电子设备组成的各种异构系统。

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