arXiv:1904.04338·v2·Quantum Physics
Toward convergence of effective field theory simulations on digital quantum computers
Omar Shehab🇺🇸 · Kevin A. Landsman🇺🇸 · Yunseong Nam🇺🇸 · Daiwei Zhu🇺🇸 · Norbert M. Linke🇺🇸 · Matthew J. Keesan🇺🇸 · Raphael C. Pooser🇺🇸 · Christopher R. Monroe🇺🇸
Abstract
We report results for simulating an effective field theory to compute the binding energy of the deuteron nucleus using a hybrid algorithm on a trapped-ion quantum computer. Two increasingly complex unitary coupled-cluster ansaetze have been used to compute the binding energy to within a few percent for successively more complex Hamiltonians. By increasing the complexity of the Hamiltonian, allowing more terms in the effective field theory expansion and calculating their expectation values, we present a benchmark for quantum computers based on their ability to scalably calculate the effective field theory with increasing accuracy. Our result of MeV may be compared with the exact Deuteron ground-state energy MeV. We also demonstrate an error mitigation technique using Richardson extrapolation on ion traps for the first time. The error mitigation circuit represents a record for deepest quantum circuit on a trapped-ion quantum computer.
Comments: 6 pages, two citation added and the grant number corrected