Error suppression in adiabatic quantum computing with qubit ensembles

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作者
Naeimeh Mohseni
Marek Narozniak
Alexey N. Pyrkov
Valentin Ivannikov
Jonathan P. Dowling
Tim Byrnes
机构
[1] East China Normal University,State Key Laboratory of Precision Spectroscopy, School of Physical and Material Sciences
[2] Max-Planck-Institut für die Physik des Lichts,Department of Physics
[3] Institute for Advanced Studies in Basic Sciences (IASBS),Department of Physics
[4] New York University Shanghai,Hearne Institute for Theoretical Physics, Department of Physics & Astronomy
[5] New York University,undefined
[6] Institute of Problems of Chemical Physics RAS,undefined
[7] Louisiana State University,undefined
[8] NYU-ECNU Institute of Physics at NYU Shanghai,undefined
[9] National Institute of Informatics,undefined
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Incorporating protection against quantum errors into adiabatic quantum computing (AQC) is an important task due to the inevitable presence of decoherence. Here, we investigate an error-protected encoding of the AQC Hamiltonian, where qubit ensembles are used in place of qubits. Our Hamiltonian only involves total spin operators of the ensembles, offering a simpler route towards error-corrected quantum computing. Our scheme is particularly suited to neutral atomic gases where it is possible to realize large ensemble sizes and produce ensemble-ensemble entanglement. We identify a critical ensemble size Nc where the nature of the first excited state becomes a single particle perturbation of the ground state, and the gap energy is predictable by mean-field theory. For ensemble sizes larger than Nc, the ground state becomes protected due to the presence of logically equivalent states and the AQC performance improves with N, as long as the decoherence rate is sufficiently low.
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