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基于横向悬浮氧化锌纳米线的纳米机电谐振器中的电致动和读出。

Electrical actuation and readout in a nanoelectromechanical resonator based on a laterally suspended zinc oxide nanowire.

机构信息

Nanoscience Centre, University of Cambridge, Cambridge, CB3 0FF, UK.

出版信息

Nanotechnology. 2012 Jan 20;23(2):025501. doi: 10.1088/0957-4484/23/2/025501.

Abstract

In this paper, we present experimental results describing enhanced readout of the vibratory response of a doubly clamped zinc oxide (ZnO) nanowire employing a purely electrical actuation and detection scheme. The measured response suggests that the piezoelectric and semiconducting properties of ZnO effectively enhance the motional current for electromechanical transduction. For a doubly clamped ZnO nanowire resonator with radius 10 nm and length ~1.91 µm, a resonant frequency around 21.4 MHz is observed with a quality factor (Q) of ~358 in vacuum. A comparison with the Q obtained in air (242) shows that these nano-scale devices may be operated in fluid as viscous damping is less significant at these length scales. Additionally, the suspended nanowire bridges show field effect transistor (FET) characteristics when the underlying silicon substrate is used as a gate electrode or using a lithographically patterned in-plane gate electrode. Moreover, the Young's modulus of ZnO nanowires is extracted from a static bending test performed on a nanowire cantilever using an AFM and the value is compared to that obtained from resonant frequency measurements of electrically addressed clamped–clamped beam nanowire resonators.

摘要

本文介绍了实验结果,描述了在纯电激励和检测方案下,对双端固定氧化锌(ZnO)纳米线的振动响应进行增强读取的情况。测量结果表明,ZnO 的压电和半导体特性有效地增强了机电转换的运动电流。对于半径约为 10nm、长度约为 1.91μm 的双端固定 ZnO 纳米线谐振器,在真空中观察到约 21.4MHz 的谐振频率,其品质因数(Q)约为 358。与在空气中获得的 Q(~242)相比,这些纳米级器件可以在液体中操作,因为在这些长度尺度下粘性阻尼不那么显著。此外,当将下面的硅衬底用作栅极电极或使用光刻图案化的面内栅电极时,悬浮纳米线桥显示出场效应晶体管(FET)特性。此外,还使用原子力显微镜(AFM)对纳米线悬臂进行静态弯曲测试,提取了 ZnO 纳米线的杨氏模量,并将其与通过电寻址的固定-固定梁纳米线谐振器的谐振频率测量获得的值进行了比较。

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