Quantum thermodynamics of holographic quenches and bounds on the growth of entanglement from the QNEC
Tanay Kibe, Ayan Mukhopadhyay, and Pratik Roy

TL;DR
This paper investigates how the quantum null energy condition (QNEC) constrains entropy production and entanglement growth in holographic quenches, revealing bounds and thermalization behaviors in quantum many-body systems.
Contribution
It provides explicit bounds on entropy and entanglement growth during holographic quenches, linking QNEC constraints to thermalization and entanglement dynamics.
Findings
QNEC imposes bounds on entropy and temperature increases during quenches.
Entanglement entropy of an interval thermalizes in time l/2 with a 3/2 exponent.
Initial quadratic growth rate of entanglement is analytically determined.
Abstract
The quantum null energy condition (QNEC) is a lower bound on the energy-momentum tensor in terms of the variation of the entanglement entropy of a sub-region along a null direction. To gain insights into quantum thermodynamics of many-body systems, we study if the QNEC restricts irreversible entropy production in quenches driven by energy-momentum inflow from an infinite memoryless bath in two-dimensional holographic theories. We find that an increase in both entropy and temperature, as implied by the Clausius inequality of classical thermodynamics, are necessary but not sufficient to not violate QNEC in quenches leading to transitions between thermal states with momentum which are dual to Banados-Teitelboim-Zanelli geometries. For an arbitrary initial state, we can determine the lower and upper bounds on the increase of entropy (temperature) for a fixed increase in temperature…
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Taxonomy
TopicsQuantum many-body systems · Black Holes and Theoretical Physics · Advanced Thermodynamics and Statistical Mechanics
