Quantum master equation for nanoelectromechanical systems beyond the wide-band limit

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Hauptverfasser: Sevitz, Sofia, Cerisola, Federico, Anders, Janet
Format: Preprint
Veröffentlicht: 2025
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author Sevitz, Sofia
Cerisola, Federico
Anders, Janet
author_facet Sevitz, Sofia
Cerisola, Federico
Anders, Janet
contents Coupling the vibrations of an oscillator to electronic transport is a key building block for nanoelectromechanical systems. They describe many nanoscale electrical components such as molecular junctions. Inspired by recent experimental developments, we derive a quantum master equation that describes nanoelectromechanical systems in a generally overlooked situation: when the electronic transport is slower than the natural frequency of the oscillator. Here, a semi-classical model is no longer valid and we develop the missing fully quantum approach. Moreover, we go beyond the wide-band limit and study the consequence of maintaining energy dependent tunneling rates, which are required to describe effects found in real devices. To benchmark our results, we compare with numerically exact results obtained with the hierarchical equations of motion method, and find overall good agreements in the experimentally accessible steady state regime. Furthermore, we derive from the microscopic model a ready to use particle current expression that replicates features already observed experimentally.
format Preprint
id arxiv_https___arxiv_org_abs_2506_20593
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum master equation for nanoelectromechanical systems beyond the wide-band limit
Sevitz, Sofia
Cerisola, Federico
Anders, Janet
Quantum Physics
Mesoscale and Nanoscale Physics
Coupling the vibrations of an oscillator to electronic transport is a key building block for nanoelectromechanical systems. They describe many nanoscale electrical components such as molecular junctions. Inspired by recent experimental developments, we derive a quantum master equation that describes nanoelectromechanical systems in a generally overlooked situation: when the electronic transport is slower than the natural frequency of the oscillator. Here, a semi-classical model is no longer valid and we develop the missing fully quantum approach. Moreover, we go beyond the wide-band limit and study the consequence of maintaining energy dependent tunneling rates, which are required to describe effects found in real devices. To benchmark our results, we compare with numerically exact results obtained with the hierarchical equations of motion method, and find overall good agreements in the experimentally accessible steady state regime. Furthermore, we derive from the microscopic model a ready to use particle current expression that replicates features already observed experimentally.
title Quantum master equation for nanoelectromechanical systems beyond the wide-band limit
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2506.20593