Fluctuating-time and full counting statistics for quantum transport in a system with internal telegraphic noise
Samuel L. Rudge, Daniel S. Kosov

TL;DR
This paper studies how telegraphic switching causes non-renewal behavior and correlations in quantum transport fluctuations across various molecular junction models, revealing the conditions under which these correlations emerge.
Contribution
It introduces a general method to include telegraphic switching in quantum transport models and analyzes its effects on fluctuation correlations in three specific scenarios.
Findings
Telegraphic switching induces strong positive correlations between successive first-passage times.
Correlations only appear when switching occurs between significantly different transport scenarios.
Switching rate must be much smaller than electron transfer rate for correlations to emerge.
Abstract
Many molecular junctions display stochastic telegraphic switching between two distinct current values, which is therefore an important source of fluctuations in nanoscale quantum transport. We investigate electronic fluctuations arising via Markovian master equations; identifying regions of non-renewal behavior due to telegraphic switching. Non-renewal behavior is characterized by the emergence of correlations between successive first-passage times of detection in one of the leads. Our method of including telegraphic switching is general for any source-molecule-drain setup, but we consider three specific cases. In the first, we model stochastic transitions between an Anderson impurity with and without an applied magnetic field . The last two scenarios couple the electronic level to a single vibrational mode via the Holstein model. We then stochastically switch between two vibrational…
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