Many-particle entanglement with Bose–Einstein condensates
Top Cited Papers
- 1 January 2001
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 409 (6816) , 63-66
- https://doi.org/10.1038/35051038
Abstract
The possibility of creating and manipulating entangled states of systems of many particles is of significant interest for quantum information processing; such a capability could lead to new applications that rely on the basic principles of quantum mechanics1. So far, up to four atoms have been entangled in a controlled way2,3. A crucial requirement for the production of entangled states is that they can be considered pure at the single-particle level. Bose–Einstein condensates4,5,6 fulfil this requirement; hence it is natural to investigate whether they can also be used in some applications of quantum information. Here we propose a method to achieve substantial entanglement of a large number of atoms in a Bose–Einstein condensate. A single resonant laser pulse is applied to all the atoms in the condensate, which is then allowed to evolve freely; in this latter stage, collisional interactions produce entanglement between the atoms. The technique should be realizable with present technology.Keywords
All Related Versions
This publication has 20 references indexed in Scilit:
- Step-by-Step Engineered Multiparticle EntanglementScience, 2000
- Experimental entanglement of four particlesNature, 2000
- Binary mixtures of Bose-Einstein condensates: Phase dynamics and spatial dynamicsThe European Physical Journal D, 2000
- Observation of Metastable States in Spinor Bose-Einstein CondensatesPhysical Review Letters, 1999
- Spin domains in ground-state Bose–Einstein condensatesNature, 1998
- The physics of trapped dilute-gas Bose–Einstein condensatesPhysics Reports, 1998
- Dynamics of Component Separation in a Binary Mixture of Bose-Einstein CondensatesPhysical Review Letters, 1998
- Bose-Einstein Condensation in a Gas of Sodium AtomsPhysical Review Letters, 1995
- Observation of Bose-Einstein Condensation in a Dilute Atomic VaporScience, 1995
- Squeezed spin statesPhysical Review A, 1993