Violation of the thermodynamic uncertainty relation in quantum collisional models
Arghya Maity, Ahana Ghoshal

TL;DR
This paper investigates violations of the thermodynamic uncertainty relation in quantum collisional models, revealing how non-Markovian dynamics can lead to significant TUR violations, especially during transient states and steady-state regimes.
Contribution
It introduces a detailed analysis of TUR violations in quantum collisional models, highlighting the impact of non-Markovian effects on thermodynamic bounds.
Findings
TUR violations occur both transiently and in steady states.
Non-Markovian dynamics influence the degree and timing of TUR violations.
Transient violations are more pronounced in certain non-Markovian regimes.
Abstract
The thermodynamic uncertainty relation (TUR) is a fundamental principle in non-equilibrium thermodynamics that relates entropy production to fluctuations in a system, establishing a trade-off between the precision of an observable and the thermodynamic cost. Investigating TUR violations challenges classical thermodynamic limits, offering the potential for improved precision-entropy trade-offs, which is crucial for enhancing performance and optimization in quantum technologies. In this work, we investigate the thermodynamic uncertainty relation within a quantum collisional model, which offers the advantage of discretizing interactions into successive collisions with auxiliaries, allowing for precise tracking of dynamics and the incorporation of memory effects and non-Markovian behavior. We consider three types of dynamics in the collisional model: one is Markovian evolution, achieved by…
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Taxonomy
TopicsQuantum Mechanics and Applications · Statistical Mechanics and Entropy
