Electromechanical switching in DNA–CNT supramolecular structures
Abstract
The characteristics of the interface between DNA and metallic carbon nanotube (CNT) in supramolecular assemblies are important to understand for electronic and sensing applications. We study the mechanical stability and electronic properties of these interfaces with amino and ester linkers using computational experiments. Our study demonstrates that both linkers significantly enhance the mechanical stability of DNA–CNT systems, with the DNA adopting a stable and lower energy perpendicular orientation relative to the CNT as opposed to a conventional parallel arrangement. This lower energy configuration is driven by nonbonded interactions between the DNA base and the CNT surface. Our calculations also reveal that interface resistance is primarily governed by DNA–CNT interactions with negligible contribution from the linkers. In the case of the amino linker, we predict a 100-fold transmission ratio between parallel and perpendicular configurations of DNA relative to CNT. This observation can be used to build an electromechanical switch with fast switching times (30 ns). The ester linker, on the contrary, enables a better electronic coupling between the DNA and CNT even when strained.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (3)
Olaiyan Alolaiyan
Department of Electrical and Computer Engineering, University of Washington 1 , Seattle, Washington 98195,
Arpan De
Department of Electrical and Computer Engineering, University of Washington 1 , Seattle, Washington 98195,
M. P. Anantram
Department of Electrical and Computer Engineering, University of Washington 1 , Seattle, Washington 98195,