1,047 research outputs found
Adiabatic quantum computation with Rydberg-dressed atoms
We study an architecture for implementing adiabatic quantum computation with
trapped neutral atoms. Ground state atoms are dressed by laser fields in a
manner conditional on the Rydberg blockade mechanism, thereby providing the
requisite entangling interactions. As a benchmark we study the performance of a
Quadratic Unconstrained Binary Optimization (QUBO) problem whose solution is
found in the ground state spin configuration of an Ising-like model. We model a
realistic architecture, including details of the atomic implementation, with
qubits encoded into the clock states of 133Cs, effective B-fields implemented
through stimulated Raman transitions, and atom-atom coupling achieved by
excitation to the 100P3/2 Rydberg level. Including the fundamental effects of
photon scattering, we find the fidelity of two-qubit implementation to be on
the order of 0.99, with higher fidelities possible with improved laser sources.Comment: 5 pages, 3 figure
Trapped ions in Rydberg-dressed atomic gases
We theoretically study trapped ions that are immersed in an ultracold gas of
Rydberg-dressed atoms. By off-resonant coupling on a dipole-forbidden
transition, the adiabatic atom-ion potential can be made repulsive. We study
the energy exchange between the atoms and a single trapped ion and find that
Langevin collisions are inhibited in the ultracold regime for these repulsive
interactions. Therefore, the proposed system avoids recently observed ion
heating in hybrid atom-ion systems caused by coupling to the ion's radio
frequency trapping field and retains ultracold temperatures even in the
presence of excess micromotion.Comment: 9 pages, 5 figures including appendice
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