Department of Materials and Interfaces, Weizmann Institute of Science , Rehovot 76100, Israel.
Theoretische Chemie, Technische Universität Dresden , Dresden D-01062, Germany.
ACS Nano. 2015 Dec 22;9(12):12224-32. doi: 10.1021/acsnano.5b05468. Epub 2015 Oct 26.
The incorporation of nanostructures into nanoelectronic and nanoelectromechanical systems is a long sought-after goal. In the present article, we report the first torsional electromechanical measurements of pure inorganic nanotubes. The WS2 nanotubes exhibited a complex and reproducible electrical response to mechanical deformation. We combined these measurements with density-functional-tight-binding calculations to understand the interplay between mechanical deformation, specifically torsion and tension, and electrical properties of WS2 nanotubes. This yielded the understanding that the electrical response to mechanical deformation may span several orders of magnitude on one hand and detect several modes of mechanical deformation simultaneously on the other. These results demonstrate that inorganic nanotubes could thus be attractive building blocks for nanoelectromechanical systems such as highly sensitive nanometric motion sensors.
将纳米结构纳入纳米电子学和纳机电系统是一个长期以来备受追求的目标。在本文中,我们报告了纯无机纳米管的首次扭转机电测量。WS2 纳米管表现出对机械变形的复杂且可重复的电响应。我们将这些测量与密度泛函紧束缚计算相结合,以理解机械变形(特别是扭转和拉伸)与 WS2 纳米管的电性能之间的相互作用。这使得我们理解到,对机械变形的电响应一方面可能跨越几个数量级,另一方面可以同时检测几种机械变形模式。这些结果表明,无机纳米管因此可能成为纳机电系统的有吸引力的构建块,例如高度灵敏的纳米级运动传感器。