Entangled States and Collective Nonclassical Effects in Two-Atom Systems


Autoria(s): Ficek, Z.; Tanas, R.
Contribuinte(s)

Allaby, J. V.

Awschalom, D. D.

Data(s)

01/12/2002

Resumo

We propose a review of recent developments on entanglement and nonclassical effects in collective two-atom systems and present a uniform physical picture of the many predicted phenomena. The collective effects have brought into sharp focus some of the most basic features of quantum theory, such as nonclassical states of light and entangled states of multiatom systems. The entangled states are linear superpositions of the internal states of the system which cannot be separated into product states of the individual atoms. This property is recognized as entirely quantum-mechanical effect and have played a crucial role in many discussions of the nature of quantum measurements and, in particular, in the developments of quantum communications. Much of the fundamental interest in entangled states is connected with its practical application ranging from quantum computation, information processing, cryptography, and interferometry to atomic spectroscopy.

Identificador

http://espace.library.uq.edu.au/view/UQ:13312

Idioma(s)

eng

Publicador

Elsevier Science B V, North-Holland

Palavras-Chave #quantum optics #atom optics #collective effects #entangled states #nonclassical field states #coherence theory #quantum beats #quantum interference #2-atom Resonance Fluorescence #Band Squeezed Vacuum #Quantum Interference #Quantum Beats #Coherence Theory #Nonclassical Field States #Entangled States #Collective Effects #Physics, Multidisciplinary #240402 Quantum Optics and Lasers #C1 #780102 Physical sciences #240201 Theoretical Physics
Tipo

Journal Article