Generation of Quantum Entanglement in Autonomous Thermal Machines: Effects of Non-Markovianity, Hilbert Space Structure, and Quantum Coherence
Achraf Khoudiri, Khadija El Anouz, Abderrahim El Allati

TL;DR
This paper theoretically explores how non-Markovian dynamics, Hilbert space structure, and quantum coherence influence entanglement generation in an autonomous thermal machine interacting with external qubits.
Contribution
It introduces a model of a quantum autonomous thermal machine that can generate entanglement through specific thermodynamic cycles influenced by quantum resources.
Findings
Entanglement is generated only under cycle A with stronger non-Markovian effects.
Temperature gradients and coherence enhance entanglement and quantum correlations.
The model aligns with experimental superconducting qubit platforms.
Abstract
We present a theoretical investigation of entanglement generation in an external quantum system via interaction with a quantum autonomous thermal machine (QATM) under non-Markovian dynamics. The QATM, composed of two qubits each coupled to independent thermal reservoirs, interacts with an external system of two additional qubits. By analyzing the Hilbert space structure, energy level configurations, and temperature gradients, we define a common interaction between the QATM qubits and the external system qubits, which allows the definition of two thermodynamic cycles (A and B) governed by virtual temperatures and energy-conserving transitions. We demonstrate that the QATM can act as a structured reservoir capable of inducing non-Markovian memory effects, as highlighted by negative entropy production rates. Using mutual information and concurrence, we show that entanglement is generated…
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