G. Alber

Generation of entangled matter qubits in two opposing parabolic mirrors

N. Trautmann [1], J. Z. Bernád, M. Sondermann [2,3], G. Alber [1,2,3,4], L. L. Sánchez-Soto, G. Leuchs [2,3]

Abstract

We propose a scheme for the remote preparation of entangled matter qubits in free space. For this purpose, a setup of two opposing parabolic mirrors is considered, each one with a single ion trapped at its focus. To get the required entanglement in this extreme multimode scenario, we take advantage of the spontaneous decay, which is usually considered as an apparent nuisance. Using semiclassical methods, we derive an efficient photon-path representation to deal with this problem. We also present a thorough examination of the experimental feasibility of the scheme. The vulnerabilities arising in realistic implementations reduce the success probability, but leave the fidelity of the generated state unaltered. Our proposal thus allows for the generation of high-fidelity entangled matter qubits with high rate.

Stabilizing distinguishable qubits against spontaneous decay by detected-jump correcting quantum codes

G. Alber [1], Th. Beth [2], Ch. Charnes [2,3], A. Delgado [1], M. Grassl [2], M. Mussinger [1]

Abstract

A new class of error-correcting quantum codes is introduced capable of stabilizing qubits against spontaneous decay arising from couplings to statistically independent reservoirs. These quantum codes are based on the idea of using an embedded quantum code and exploiting the classical information available about which qubit has been affected by the environment. They are immediately relevant for quantum computation and information processing using arrays of trapped ions or nuclear spins. Interesting relations between these quantum codes and basic notions of design theory are established.