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Open Quantum Systems Decoherence Quantum Simulation

Quantum dynamics and relaxation in comb turbulent diffusion

arXiv
Authors: Alexander Iomin

Year

2020

Paper ID

19989

Status

Preprint

Abstract Read

~2 min

Abstract Words

211

Citations

N/A

Abstract

Continuous time quantum walks in the form of quantum counterparts of turbulent diffusion in comb geometry are considered. The interplay between the backbone inhomogeneous advection δ(y)xpartialx along the x axis, which takes place only at the y=0, and normal diffusion inside fingers partialy2 along the y axis leads to turbulent diffusion. This geometrical constraint of transport coefficients due to comb geometry and properties of a dilatation operator lead to consideration of two possible scenarios of quantum mechanics. These two variants of continuous time quantum walks are described by non-Hermitian operators of the form hat{cal H}=hat{A}+ihat{B}. Operator hat{A} is responsible for the unitary transformation, while operator ihat{B} is responsible for quantum/classical relaxation. At the first quantum scenario, the initial wave packet can move against the classical streaming. This quantum swimming upstream is due to the dilatation operator, which is responsible for the quantum (not unitary) dynamics along the backbone, while the classical relaxation takes place in fingers. In the second scenario, the dilatation operator is responsible for the quantum relaxation in the form of an imaginary optical potential, while the quantum unitary dynamics takes place in fingers. Rigorous analytical analysis is performed for both wave and Green's functions.

Why This Paper Matters

  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
  • It adds a 2020 reference point for readers tracking recent quantum research.
  • Continuous time quantum walks in the form of quantum counterparts of turbulent diffusion in comb geometry are considered.

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