Heat rectification through single and coupled quantum dots
Ludovico Tesser, Bibek Bhandari, Paolo Andrea Erdman, Elisabetta, Paladino, Rosario Fazio, Fabio Taddei

TL;DR
This paper investigates heat rectification in quantum dot systems, analyzing both single and coupled dots, considering sequential tunneling and cotunneling effects, and identifying conditions for nearly perfect rectification.
Contribution
It provides a comprehensive analysis of heat rectification in quantum dots, including bounds, effects of cotunneling, and non-local rectification in coupled quantum dot systems.
Findings
Rectification bounds are derived for doubly-degenerate levels.
Cotunneling can enhance rectification by reducing heat currents.
Non-local rectification can be perfect in coupled quantum dots with proper tuning.
Abstract
We study heat rectification through quantum dots in the Coulomb blockade regime using a master equation approach. We consider both cases of two-terminal and four-terminal devices. In the two-terminal configuration, we analyze the case of a single quantum dot with either a doubly-degenerate level or two non-degenerate levels. In the sequential tunneling regime we analyze the behaviour of heat currents and rectification as functions of the position of the energy levels and of the temperature bias. In particular, we derive an upper bound for rectification in the closed-circuit setup with the doubly-degenerate level. We also prove the absence of a bound for the case of two non-degenerate levels and identify the ideal system parameters to achieve nearly perfect rectification. The second part of the paper deals with the effect of second-order cotunneling contributions, including both elastic…
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