Simulations of subatomic many-body physics on a quantum frequency processor

Hsuan‐Hao Lu, Natalie Klco, Joseph M. Lukens, Titus Morris, Aaina Bansal, A. Ekström, G. Hagen, T. Papenbrock, Andrew M. Weiner, Martin J. Savage A, Pavel Lougovski · Physical Review A · 2019

Simulating complex many-body quantum phenomena is a major scientific impetus behind the development of quantum computing, and a range of technologies are being explored to address such systems. We present the results of the largest photonics-based simulation to date, applied in the context of subatomic physics. Using an all-optical quantum frequency processor, the ground-state energies of light nuclei including the triton ($^{3}\mathrm{H}$), $^{3}\mathrm{He}$, and the alpha particle ($^{4}\mathrm{He}$) are computed. Complementing these calculations and utilizing a 68-dimensional Hilbert space, our photonic simulator is used to perform subnucleon calculations of the two- and three-body forces between heavy mesons in the Schwinger model. This work is a first step in simulating subatomic many-body physics on quantum frequency processors---augmenting classical computations that bridge scales from quarks to nuclei.

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