Quantum noise in optical fibers. I. Stochastic equations


Autoria(s): Drummond, P. D.; Corney, J. F.
Contribuinte(s)

G. I. Stegeman

B. Williams

Data(s)

01/02/2001

Resumo

We analyze the quantum dynamics of radiation propagating in a single-mode optical fiber with dispersion, nonlinearity, and Raman coupling to thermal phonons. We start from a fundamental Hamiltonian that includes the principal known nonlinear effects and quantum-noise sources, including linear gain and loss. Both Markovian and frequency-dependent, non-Markovian reservoirs are treated. This treatment allows quantum Langevin equations, which have a classical form except for additional quantum-noise terms, to be calculated. In practical calculations, it is more useful to transform to Wigner or 1P quasi-probability operator representations. These transformations result in stochastic equations that can be analyzed by use of perturbation theory or exact numerical techniques. The results have applications to fiber-optics communications, networking, and sensor technology.

Identificador

http://espace.library.uq.edu.au/view/UQ:13295

Idioma(s)

eng

Publicador

Optical Society of America

Palavras-Chave #quantum optics #atom optics #quantum information #optical fibers #stochastic equations #Long-range Interaction #Self-frequency Shift #Solitons #Propagation #240402 Quantum Optics and Lasers #780102 Physical sciences #240401 Optics and Opto-electronic Physics #C1
Tipo

Journal Article