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Quantifying fault tolerant simulation of strongly correlated systems using the Fermi-Hubbard model

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arxiv 2406.06511 v2 pith:D3VDKDVZ submitted 2024-06-10 quant-ph cond-mat.str-el

Quantifying fault tolerant simulation of strongly correlated systems using the Fermi-Hubbard model

classification quant-ph cond-mat.str-el
keywords materialsquantummodelbeencomputerscorrelatedfault-tolerantfermi-hubbard
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Understanding the physics of strongly correlated materials is one of the grand challenge problems for physics today. A large class of scientifically interesting materials, from high-$T_c$ superconductors to spin liquids, involve medium to strong correlations, and building a holistic understanding of these materials is critical. Doing so is hindered by the competition between the kinetic energy and Coulomb repulsion, which renders both analytic and numerical methods unsatisfactory for describing interacting materials. Fault-tolerant quantum computers have been proposed as a path forward to overcome these difficulties, but this potential capability has not yet been fully assessed. Here, using the multi-orbital Fermi-Hubbard model as a representative model and a source of scalable problem specifications, we estimate the resource costs needed to use fault-tolerant quantum computers for obtaining experimentally relevant quantities such as correlation function estimation. We find that advances in quantum algorithms and hardware will be needed in order to reduce quantum resources and feasibly address utility-scale problem instances.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Two Layers, No Swaps: Biplanar SPOQC Architecture Improves Runtime of Fermi-Hubbard Simulation

    quant-ph 2026-05 unverdicted novelty 6.0

    The biplanar architecture maps Fermi-Hubbard spin sectors to two planes, eliminating swaps and cutting each Trotter step depth to 4t_synth + 90 logical timesteps versus 6t_synth + 354 in single-plane methods, yielding...

  2. How to Build a Quantum Supercomputer: Scaling from Hundreds to Millions of Qubits

    quant-ph 2024-11 accept novelty 4.0

    A comprehensive review of scaling paths for superconducting quantum computers, with resource and sensitivity analyses for utility-scale applications under realistic error distributions.

  3. Prospects for NMR Spectral Prediction on Fault-Tolerant Quantum Computers

    quant-ph 2024-06 unverdicted novelty 4.0

    NMR spectral simulations in zero/ultralow fields for small molecules and proteins are identified as promising applications for fault-tolerant quantum computation via qubitized dynamics circuits.