Determining ground-state phase diagrams on quantum computers via a generalized application of adiabatic state preparation
ORAL
Abstract
Quantum phase transitions materialize as level crossings in the ground-state energy when the parameters of the Hamiltonian are varied. The resulting ground-state phase diagrams are straightforward to determine by exact diagonalization on classical computers, but are challenging on quantum computers because of the accuracy needed and the near degeneracy of competing states close to the level crossings. In this work, we use a local adiabatic ramp for state preparation to allow us to directly compute ground-state phase diagrams on a quantum computer via time evolution. This methodology is illustrated by examining the ground states of the XY model with a magnetic field in the z-direction in one dimension. We are able to calculate an accurate phase diagram on both two and three site systems using IBM quantum machines.
*This work was supported by the Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering grant No. DE-SC0019469, and by the National Science Foundation grant no. NSF DMR-1752713. James K. Freericks was also supported by the McDevitt bequest at Georgetown.
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Presenters
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Akhil Francis
- North Carolina State University