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Phys. Rev. A 71, 022311 (2005) [12 pages]

Vibrational coherent quantum computation

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M. Paternostro and M. S. Kim
School of Mathematics and Physics, The Queen’s University, Belfast, BT7 1NN, United Kingdom

P. L. Knight
Blackett Laboratory, Imperial College London, Prince Consort Road, London SW7 2BW, United Kingdom

Received 21 May 2004; published 17 February 2005

A long-lived coherent state and nonlinear interaction have been experimentally demonstrated for the vibrational mode of a trapped ion. We propose an implementation of quantum computation using coherent states of the vibrational modes of trapped ions. Differently from earlier experiments, we consider a far-off resonance for the interaction between external fields and the ion in a bidimensional trap. By appropriate choices of the detunings between the external fields, the adiabatic elimination of the ionic excited level from the Hamiltonian of the system allows for beam splitting between orthogonal vibrational modes, production of coherent states, and nonlinear interactions of various kinds. In particular, this model enables the generation of the four coherent Bell states. Furthermore, all the necessary operations for quantum computation, such as preparation of qubits and one-qubit and controlled two-qubit operations, are possible. The detection of the state of a vibrational mode in a Bell state is made possible by the combination of resonant and off-resonant interactions between the ion and some external fields. We show that our read-out scheme provides highly efficient discrimination between all the four Bell states. We extend this to a quantum register composed of many individually trapped ions. In this case, operations on two remote qubits are possible through a cavity mode. We emphasize that our remote-qubit operation scheme does not require a high-quality factor resonator: the cavity field acts as a catalyst for the gate operation.

© 2005 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.71.022311
DOI:
10.1103/PhysRevA.71.022311
PACS:
03.67.Lx, 42.50.−p, 32.80.Qk