Adiabatic Quantum Computing via the Rydberg Blockade
ORAL
Abstract
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 the effects of magnetic level structure, with qubits encoded into the clock states of $^{133}$Cs, effective B-fields implemented through microwaves and light shifts, and atom-atom coupling achieved by excitation to a high-lying Rydberg level. Including the fundamental effects of photon scattering we find a high fidelity for the two-qubit implementation.
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Authors
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Tyler Keating
CQuIC, University of New Mexico
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Krittika Goyal
CQuIC, University of New Mexico
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Ivan Deutsch
University of New Mexico, CQuIC, University of New Mexico