Generation of coherence in an exactly solvable nonlinear nanomechanical system
A. K. Singh, L. Chotorlishvili, S. Srivastava, I. Tralle, Z., Toklikishvili, J. Berakdar, S. K. Mishra

TL;DR
This paper investigates how quantum coherence can be generated unitarily in a nonlinear nanomechanical system involving an NV center, highlighting the role of initial state preparation and quantum chaos in coherence production.
Contribution
It introduces a novel analysis of quantum coherence generation in a nonlinear, driven nanomechanical system using Mathieu functions and links chaos theory to coherence dynamics.
Findings
Coherence production is efficient when initial states are in the chaotic region near the separatrix.
Quantum chaos and loss of initial information promote coherence generation.
Quantum distance from the homoclinic tangle correlates with coherence efficiency.
Abstract
This study is focused on the quantum dynamics of a nitrogen-vacancy (NV) center coupled to a nonlinear, periodically driven mechanical oscillator. For a continuous periodic driving that depends on the position of the oscillator, the mechanical motion is described by Mathieu elliptic functions. This solution is employed to study the dynamics of the quantum spin system including environmental effects and to evaluate the purity and the von Neumann entropy of the NV-spin. The unitary generation of coherence is addressed. We observe that the production of coherence through a unitary transformation depends on whether the system is prepared initially in mixed state. Production of coherence is efficient when the system initially is prepared in the region of the separatrix (i.e., the region where classical systems exhibit dynamical chaos). From the theory of dynamical chaos, we know that phase…
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