Controlled collisions for multi-particle entanglement of optically trapped atoms
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Open Access
- 1 October 2003
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 425 (6961) , 937-940
- https://doi.org/10.1038/nature02008
Abstract
Entanglement lies at the heart of quantum mechanics, and in recent years has been identified as an essential resource for quantum information processing and computation1,2,3,4. The experimentally challenging production of highly entangled multi-particle states is therefore important for investigating both fundamental physics and practical applications. Here we report the creation of highly entangled states of neutral atoms trapped in the periodic potential of an optical lattice. Controlled collisions between individual neighbouring atoms are used to realize an array of quantum gates, with massively parallel operation. We observe a coherent entangling–disentangling evolution in the many-body system, depending on the phase shift acquired during the collision between neighbouring atoms. Such dynamics are indicative of highly entangled many-body states; moreover, these are formed in a single operational step, independent of the size of the system5,6.Keywords
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This publication has 22 references indexed in Scilit:
- Quantum Entanglement: A Modern PerspectivePhysics Today, 2003
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atomsNature, 2002
- Josephson Junction Arrays with Bose-Einstein CondensatesScience, 2001
- A One-Way Quantum ComputerPhysical Review Letters, 2001
- Persistent Entanglement in Arrays of Interacting ParticlesPhysical Review Letters, 2001
- Quantum computing with neutral atomsJournal of Modern Optics, 2000
- Demonstrating the viability of universal quantum computation using teleportation and single-qubit operationsNature, 1999
- Entanglement of Atoms via Cold Controlled CollisionsPhysical Review Letters, 1999
- Macroscopic Quantum Interference from Atomic Tunnel ArraysScience, 1998
- Cold Bosonic Atoms in Optical LatticesPhysical Review Letters, 1998