School of Material Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Nano Lett. 2010 Aug 11;10(8):3084-9. doi: 10.1021/nl1017145.
We report the first piezoelectric potential gated hybrid field-effect transistors based on nanotubes and nanowires. The device consists of single-walled carbon nanotubes (SWNTs) on the bottom and crossed ZnO piezoelectric fine wire (PFW) on the top with an insulating layer between. Here, SWNTs serve as a carrier transport channel, and a single-crystal ZnO PFW acts as the power-free, contact-free gate or even an energy-harvesting component later on. The piezopotential created by an external force in the ZnO PFW is demonstrated to control the charge transport in the SWNT channel located underneath. The magnitude of the piezopotential in the PFW at a tensile strain of 0.05% is measured to be 0.4-0.6 V. The device is a unique coupling between the piezoelectric property of the ZnO PFW and the semiconductor performance of the SWNT with a full utilization of its mobility. The newly demonstrated device has potential applications as a strain sensor, force/pressure monitor, security trigger, and analog-signal touch screen.
我们报告了首例基于纳米管和纳米线的压电势垒混合场效应晶体管。该器件由底部的单壁碳纳米管(SWNTs)和顶部的交叉氧化锌压电细线(PFW)组成,中间隔着一层绝缘层。在这里,SWNTs 用作载流子输运通道,单晶 ZnO PFW 用作无电源、无接触的栅极,甚至是能量收集组件。证明由 ZnO PFW 中的外力产生的压电势可以控制位于其下方的 SWNT 通道中的电荷输运。在拉伸应变 0.05%的情况下,PFW 中的压电势的大小测量为 0.4-0.6 V。该器件是 ZnO PFW 的压电特性与 SWNT 的半导体性能之间的独特耦合,充分利用了其迁移率。新展示的器件具有作为应变传感器、力/压力监视器、安全触发器和模拟信号触摸屏的潜在应用。