Downfolding Complex Materials Problems Onto Model Hamiltonians for Quantum ComputersSimulating the properties of quantum materials is expected to be one of the exciting applications for quantum computers and where we hope to see advantages over classical hardware. The complexity of ab initio Hamiltonians describing the physics of application-relevant materials places them beyond the realm of possibility for solution on near-term hardware with a limited number of qubits. Various Hamiltonian approximations, including Hamiltonian downfolding, offers a possibility towards simulating complex materials on near-term hardware. This is accomplished by approximating the relevant physics of a given material through their representation by simpler model Hamiltonians, such as the Hubbard Hamiltonian or extensions of it. Here we employ a well-defined first-principles methodology for deriving downfolded multi-band extended Hubbard Hamiltonians of materials, capturing strong electronic correlation and electron-phonon coupling, based on the formalism of Wannier functions and the calculation of the screened Coulomb interaction. We demonstrate for a variety of systems that quantum simulation of these downfolded Hamiltonians reproduces key properties, thus establishing downfolding as a promising route to achieve near-term simulation of application-relevant systems on quantum hardware.
Document ID
20230015015
Acquisition Source
Ames Research Center
Document Type
Presentation
Authors
Antonios Markos Alvertis (KBR (United States) Houston, Texas, United States)
Norman Tubman (Ames Research Center Mountain View, California, United States)
Date Acquired
October 18, 2023
Subject Category
Computer Operations and Hardware
Meeting Information
Meeting: American Physical Society's (APS) March Meeting