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利用液晶控制纳米机电系统中的迟滞现象。

Controlling Stiction in Nano-Electro-Mechanical Systems Using Liquid Crystals.

机构信息

Optoelectronics Research Centre and Centre for Photonic Metamaterials, ‡Physics and Astronomy, and §Faculty of Engineering and the Environment, University of Southampton , Southampton, SO17 1BJ, U.K.

出版信息

ACS Nano. 2016 Dec 27;10(12):11519-11524. doi: 10.1021/acsnano.6b07495. Epub 2016 Nov 29.

Abstract

Stiction is one of the major reliability issues limiting practical application of nano-electro-mechanical systems (NEMS), an emerging device technology that exploits mechanical movements on the scale of an integrated electronic circuit. We report on a discovery that stiction can be eliminated by infiltrating NEMS with nematic liquid crystals. We demonstrate this experimentally using a NEMS-based tunable photonic metamaterial, where reliable switching of optical response was achieved for the entire range of nanoscopic structural displacements admitted by the metamaterial design. Being a more straightforward and easy-to-implement alternative to the existing antistiction solutions, our approach also introduces an active mechanism of stiction control, which enables toggling between stiction-free and the usual (stiction-limited) regimes of NEMS operation. It is expected to greatly expand the functionality of electro-mechanical devices and enable the development of adaptive and smart nanosystems.

摘要

粘连是限制纳米机电系统(NEMS)实际应用的主要可靠性问题之一,NEMS 是一种新兴的器件技术,利用集成电路规模的机械运动。我们报告了一个发现,即通过向 NEMS 中渗透向列液晶可以消除粘连。我们使用基于 NEMS 的可调光子超材料实验证明了这一点,其中可靠的光学响应切换对于超材料设计允许的整个纳米级结构位移范围都得到了实现。作为现有防粘连解决方案的更直接、易于实现的替代方案,我们的方法还引入了粘连控制的主动机制,它可以在无粘连和 NEMS 操作的通常(受粘连限制)模式之间进行切换。预计这将极大地扩展机电设备的功能,并能够开发自适应和智能纳米系统。

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