Quantum simulation of many-body non-equilibrium dynamics in tilted Fermi-Hubbard models
ORAL
Abstract
Identifying applications of state-of-the art quantum computers and quantum simulators within their limitations is a problem of contemporary interest. Problems in quantum many-body physics often lie at the intersection of computational hardness and physical pertinence. Here we show that a quantum simulator can be used to develop new, efficient classical algorithms to study the dynamics of many-body systems. We first consider a localized 1D Fermi-Hubbard system where the exact techniques of computing the time dynamics are inefficient, and develop an efficient approximate theory. Our approximate theory does not have an error estimate and therefore, we use a quantum simulator to benchmark its performance in terms of accuracy of its outcome. We use the approximate theory to further study the interacting features of localized systems [1]. Moreover, we extend this approximation to the 2D Fermi-Hubbard model, where the reach of existing numerical techniques is very limited. We show that our method, together with sequence extrapolation techniques can be used to study some 2D Fermi-Hubbard models.
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Publication: [1] B. Hebbe Madhusudhana et al, PRX Quantum 2 (4), 040325 (2021)
Presenters
Bharath Hebbe Madhusudhana
Ludwig-Maximilians-Universitaet (LMU-Munich)
Authors
Bharath Hebbe Madhusudhana
Ludwig-Maximilians-Universitaet (LMU-Munich)
Sebastian Scherg
Ludwig-Maximilians-Universitaet (LMU-Munich)
Thomas Kohlert
Ludwig-Maximilians-Universitaet (LMU-Munich)
Immanuel Bloch
Max Planck Institute for Quantum Optics, Ludwig-Maximilians-Universität (LMU-Munich), Max-Planck Institut für Quantenoptik (MPQ), Munich Center for Quantum Science and Technology (MCQST), Max Planck Institute of Quantum Optics, Max Planck Institute of Quantum Optics, 85748 Garching, Germany and Fakultät für Physik, Ludwig-Maximilians-Universität, 80799 Munich, Germany