The effect of elastic disorder on single electron transport through a buckled nanotube
arXiv:2107.10887 · doi:10.1103/PhysRevResearch.4.013068
Abstract
We study transport properties of a single electron transistor based on elastic nanotube. Assuming that an external compressive force is applied to the nanotube, we focus on the vicinity of the Euler buckling instability. We demonstrate that in this regime the transport through the transistor is extremely sensitive to elastic disorder. In particular, built-in curvature (random or regular) leads to the ``elastic curvature blockade'': appearance of threshold bias voltage in the - curve which can be larger than the Coulomb-blockade-induced one. In the case of a random curvature, an additional plateau in dependence of the average current on a bias voltage appears.
16 LaTeX pages, 16 figures
References in corpus (10)
- Franck-Condon blockade and giant Fano factors in transport through single molecules
- Strong coupling between single-electron tunneling and nano-mechanical motion
- Franck-Condon blockade in suspended carbon nanotube quantum dots
- Theory of the Franck-Condon blockade regime
- Self-consistent theory of molecular switching
- Strong feedback and current noise in nanoelectromechanical systems
- The charge shuttle as a nanomechanical ratchet
- Distortion blockade in classical nano-electromechanical resonator
- Stretching semiflexible filaments with quenched disorder
- A constrained random-force model for weakly bending semiflexible polymers