Charge and heat transport through quantum dots with local and correlated-hopping interactions
Ulrich Eckern, Karol I. Wysoki\'nski

TL;DR
This paper investigates how correlated hopping influences charge and heat transport in quantum dots, revealing symmetry properties and proposing experimental detection methods for these effects.
Contribution
It introduces the effect of correlated hopping into the Anderson model and analyzes its impact on quantum dot transport properties using Green function techniques.
Findings
Correlated hopping breaks particle-hole symmetry.
Transport properties exhibit an x↔2−x symmetry.
Proposed experimental methods to detect correlated hopping effects.
Abstract
The transport properties of junctions composed of a central region tunnel-coupled to external electrodes are frequently studied within the single-impurity Anderson model with Hubbard on-site interaction. In the present work, we supplement the model with an important ingredient, namely the charge-bond interaction, also known as correlated or assisted hopping. Correlated hopping enters the second-quantised Hamiltonian, written in the Wannier representation, as an off-diagonal many-body term. Using the equation of motion technique, we study the effect of the correlated hopping on the spectral and transport characteristics of a two-terminal quantum dot. Two different Green functions (GFs) appear: one of them describes the spectral properties of the quantum dot, the other the transport properties of the system. The calculation of the transport GF requires the knowledge of the spectral one.…
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