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Design and analysis of compact ultra Energy-Efficient logic gates using laterally-actuated double-electrode NEMS

机译:使用侧向驱动双电极NEMS的紧凑型超节能逻辑门的设计和分析

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Nano-Electro-Mechanical Switches (NEMS) are among the most promising emerging devices due to their near-zero subthreshold-leakage currents. This paper reports device fabrication and modeling, as well as novel logic gate design using “laterally-actuated double-electrode NEMS” structures. The new device structure has several advantages over existing NEMS architectures such as being immune to impact bouncing and release vibrations (unlike a vertically-actuated NEMS) and offer higher flexibility to implement compact logic gates (unlike a single-electrode NEMS). A comprehensive analytical framework is developed to model different properties of these devices by solving the Euler-Bernoulli''s beam equation. The proposed model is validated using measurement data for the fabricated devices. It is shown that by ignoring the non-uniformity of the electrostatic force distribution, the existing models “underestimate” the actual value of Vpull-in and Vpull-out. Furthermore, novel energy efficient NEMS-based circuit topologies are introduced to implement compact inverter, NAND, NOR and XOR gates. For instance, the proposed XOR gate can be implemented by using only two NEMS devices compared to that of a static CMOS-based XOR gate that requires at least 10 transistors.
机译:纳米机电开关(NEMS)由于其接近零的亚阈值泄漏电流而成为最有前途的新兴设备之一。本文报告了器件制造和建模,以及使用“侧向驱动双电极NEMS”结构的新型逻辑门设计。与现有的NEMS架构相比,新的器件结构具有多个优势,例如不受冲击跳动和释放振动的影响(与垂直驱动的NEMS不同),并且为实现紧凑的逻辑门提供了更高的灵活性(与单电极NEMS不同)。通过求解Euler-Bernoulli的光束方程,开发了一个综合的分析框架来对这些设备的不同属性进行建模。所提出的模型使用制造设备的测量数据进行了验证。结果表明,通过忽略静电力分布的不均匀性,现有模型“低估了” V 上拉和V 上拉的实际值。此外,引入了基于NEMS的新型节能电路拓扑,以实现紧凑型反相器,NAND,NOR和XOR门。例如,与需要至少10个晶体管的基于静态CMOS的XOR门相比,所建议的XOR门可以通过仅使用两个NEMS器件来实现。

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