Identificador persistente para citar o vincular este elemento: http://hdl.handle.net/10553/136857
Título: Quantum dissipation of planar harmonic systems: Maxwell-Chern-Simons theory
Autores/as: Valido Flores, Antonio Alejandro 
Clasificación UNESCO: 221023 Teoría cuántica
Fecha de publicación: 2019
Publicación seriada: Physical Review D 
Resumen: The conventional Brownian motion in harmonic systems has provided a deep understanding of a great diversity of dissipative phenomena. We address a rather fundamental microscopic description for the (linear) dissipative dynamics of two-dimensional harmonic oscillators that contains the conventional Brownian motion as a particular instance. This description is derived from first principles in the framework of the so-called Maxwell-Chern-Simons electrodynamics, or also known, Abelian topological massive gauge theory. Disregarding backreaction effects and endowing the system Hamiltonian with a suitable renormalized potential interaction, the conceived description is equivalent to a minimal-coupling theory with a gauge field giving rise to a fluctuating force that mimics the Lorentz force induced by a particle-attached magnetic flux. We show that the underlying symmetry structure of the theory (i.e. time-reverse asymmetry and parity violation) yields an interacting vortex-like Brownian dynamics for the system particles. An explicit comparison to the conventional Brownian motion in the quantum Markovian limit reveals that the proposed description represents a second-order correction to the well-known damped harmonic oscillator, which manifests that there may be dissipative phenomena intrinsic to the dimensionality of the interesting system.
URI: http://hdl.handle.net/10553/136857
ISSN: 2470-0010
DOI: 10.1103/PhysRevD.99.016003
Fuente: Physical Review D [ISSN 2470-0010], v. 99
Colección:Artículos
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