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单层二硫化钼悬浮沟道晶体管和谐振器中的机电耦合及设计考量

Electromechanical coupling and design considerations in single-layer MoS2 suspended-channel transistors and resonators.

作者信息

Yang Rui, Islam Arnob, Feng Philip X-L

机构信息

Department of Electrical Engineering & Computer Science, Case School of Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA.

出版信息

Nanoscale. 2015 Dec 21;7(47):19921-9. doi: 10.1039/c5nr06118k. Epub 2015 Nov 18.

Abstract

We report on the analysis of electromechanical coupling effects in suspended doubly-clamped single-layer MoS2 structures, and the designs of suspended-channel field-effect transistors (FETs) and vibrating-channel nanoelectromechanical resonators. In DC gating scenario, signal transduction processes including electrostatic actuation, deflection, straining on bandgap, mobility, carrier density and their intricate cross-interactions, have been analyzed considering strain-enhanced mobility (by up to 4 times), to determine the transfer characteristics. In AC gating scenario and resonant operations (using 100 MHz and 1 GHz devices as relevant targets), we demonstrate that the vibrating-channel MoS2 devices can offer enhanced signals (than the zero-bandgap graphene counterparts), thanks to the resonant straining effects on electron transport of the semiconducting channel. We also show dependence of signal intensity and signal-to-background ratio (SBR) on device geometries and scaling effects, with SBR enhancement by a factor of ∼8 for resonance signal, which provide guidelines toward designing future devices with desirable parameters.

摘要

我们报告了对悬浮双端夹紧单层MoS2结构中的机电耦合效应的分析,以及悬浮沟道场效应晶体管(FET)和振动沟道纳米机电谐振器的设计。在直流门控情况下,考虑到应变增强迁移率(高达4倍),分析了包括静电驱动、偏转、带隙应变、迁移率、载流子密度及其复杂的交叉相互作用在内的信号转导过程,以确定传输特性。在交流门控情况和谐振操作中(以100 MHz和1 GHz器件作为相关目标),我们证明,由于对半导体沟道电子传输的谐振应变效应,振动沟道MoS2器件可以提供增强的信号(比零带隙石墨烯对应器件)。我们还展示了信号强度和信噪比(SBR)对器件几何形状和缩放效应的依赖性,谐振信号的SBR提高了约8倍,这为设计具有理想参数的未来器件提供了指导。

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