Anomalous current-electric field characteristics in transport through a nanoelectromechanical systems

Fuente: arXiv
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Main Authors: Wu, Chengjie, Ding, Yi, Yan, Yiying, Su, Yuguo, Ayieta, Elijah Omollo, Radošević, Slobodan, Engelhardt, Georg, Schaller, Gernot, Luo, JunYan
Format: Preprint
Published: 2025
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author Wu, Chengjie
Ding, Yi
Yan, Yiying
Su, Yuguo
Ayieta, Elijah Omollo
Radošević, Slobodan
Engelhardt, Georg
Schaller, Gernot
Luo, JunYan
author_facet Wu, Chengjie
Ding, Yi
Yan, Yiying
Su, Yuguo
Ayieta, Elijah Omollo
Radošević, Slobodan
Engelhardt, Georg
Schaller, Gernot
Luo, JunYan
contents A deep understanding of the correlation between electronic and mechanical degrees of freedom is crucial to the development of quantum devices in a nanoelectromechanical system (NEMS). In this work, we first establish a fully quantum mechanical approach for transport through a NEMS device, which is valid for arbitrary bias voltages, temperatures, and electro-mechanical couplings. We find an anomalous current-electric field characteristics at a low bias, where the current decreases with a rising electric field, associated with the backward tunneling of electrons for a weak mechanical damping. We reveal that this intriguing behavior arises from a combined effect of mechanical motion and Coulomb blockade, where the rapid increase of backward tunneling events at a large oscillation amplitude suppresses the forward current due to prohibition of double occupation. In the opposite limit of strong damping, the oscillator dissipates its energy to the environment and relaxes to the ground state rapidly. Electrons then transport via the lowest vibrational state such that the net current and its corresponding noise have a vanishing dependence on the electric field.
format Preprint
id arxiv_https___arxiv_org_abs_2503_12106
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Anomalous current-electric field characteristics in transport through a nanoelectromechanical systems
Wu, Chengjie
Ding, Yi
Yan, Yiying
Su, Yuguo
Ayieta, Elijah Omollo
Radošević, Slobodan
Engelhardt, Georg
Schaller, Gernot
Luo, JunYan
Mesoscale and Nanoscale Physics
Quantum Physics
A deep understanding of the correlation between electronic and mechanical degrees of freedom is crucial to the development of quantum devices in a nanoelectromechanical system (NEMS). In this work, we first establish a fully quantum mechanical approach for transport through a NEMS device, which is valid for arbitrary bias voltages, temperatures, and electro-mechanical couplings. We find an anomalous current-electric field characteristics at a low bias, where the current decreases with a rising electric field, associated with the backward tunneling of electrons for a weak mechanical damping. We reveal that this intriguing behavior arises from a combined effect of mechanical motion and Coulomb blockade, where the rapid increase of backward tunneling events at a large oscillation amplitude suppresses the forward current due to prohibition of double occupation. In the opposite limit of strong damping, the oscillator dissipates its energy to the environment and relaxes to the ground state rapidly. Electrons then transport via the lowest vibrational state such that the net current and its corresponding noise have a vanishing dependence on the electric field.
title Anomalous current-electric field characteristics in transport through a nanoelectromechanical systems
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2503.12106