B Vaucher et al 2007 New J. Phys. 9 221 doi:10.1088/1367-2630/9/7/221
B Vaucher1, S R Clark, U Dorner and D Jaksch
Show affiliationsWe propose a method for the fast generation of a quantum register of addressable qubits consisting of ultracold atoms stored in an optical lattice. Starting with a half filled lattice we remove every second lattice barrier by adiabatically switching on a superlattice potential which leads to a long wavelength lattice in the Mott insulator state with unit filling. The larger periodicity of the resulting lattice could make individual addressing of the atoms via an external laser feasible. We develop a Bose-Hubbard-like model for describing the dynamics of cold atoms in a lattice when doubling the lattice periodicity via the addition of a superlattice potential. The dynamics of the transition from a half filled to a commensurately filled lattice is analysed numerically with the help of the time evolving block decimation algorithm and analytically using the Kibble–Zurek theory. We show that the timescale for the whole process, i.e. creating the half filled lattice and subsequent doubling of the lattice periodicity, is significantly faster than adiabatic direct quantum-freezing of a superfluid into a Mott insulator for large lattice periods. Our method therefore provides a high-fidelity quantum register of addressable qubits on a fast timescale.
Issue 7 (July 2007)
Received 27 February 2007
Published 10 July 2007
B Vaucher et al 2007 New J. Phys. 9 221
Pietro Antonioli et al 2004 New J. Phys. 6 114
J. M. Schwarz et al 2006 Europhys. Lett. 73 560
W Weber et al 1999 New J. Phys. 1 9
J. P. Neirotti and D. Saad 2005 Europhys. Lett. 71 866
Juan A Almendral et al 2007 New J. Phys. 9 183
T Koponen et al 2006 New J. Phys. 8 179
Richard L Weaver 2007 New J. Phys. 9 8
G. T. Pickett 2006 Europhys. Lett. 76 616
S Reich et al 2003 New J. Phys. 5 99