Feynman-Vernon influence functional approach to quantum transport in interacting nanojunctions: An analytical hierarchical study
L. Magazz\`u, M. Grifoni

TL;DR
This paper introduces a nonperturbative, exact real-time path integral approach for quantum charge transport in interacting nanojunctions, providing a hierarchical diagrammatic structure and applying it to the resonant level and Anderson models.
Contribution
It develops a formally exact hierarchical diagrammatic method for quantum transport in interacting nanojunctions, unifying and extending previous approximation schemes.
Findings
Exact GME kernel with hierarchical structure
Recovery of known results in quantum transport
Development of a noncrossing approximation for the kernel
Abstract
We present a nonperturbative and formally exact approach for the charge transport in interacting nanojunctions based on a real time path integral formulation of the reduced system dynamics. An expansion of the influence functional in terms of the number of tunneling transitions, and integration of the Grassmann variables between the tunneling times, allows us to obtain a still exact generalized master equation (GME) for the populations of the reduced density matrix (RDM) in the occupation number representation, as well as a formally exact expression for the current. By borrowing the nomenclature of the famous spin-boson problem, we characterize the two-state dynamics of such degrees of freedom on the forward and backward branches in terms of single four-state paths with alternating blips and sojourns. This allows a diagrammatic representation of the GME kernel and its parametrization in…
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