Skip to main navigation Skip to search Skip to main content

Scattering Processes from Quantum Simulation Algorithms for Scalar Field Theories

  • Andrew Hardy
  • , Priyanka Mukhopadhyay
  • , M. Sohaib Alam
  • , Robert Konik
  • , Layla Hormozi
  • , Eleanor Rieffel
  • , Stuart Hadfield
  • , João Barata
  • , Raju Venugopalan
  • , Dmitri E. Kharzeev
  • , Nathan Wiebe
  • University of Toronto
  • NASA Ames Research Center
  • Universities Space Research Association
  • Brookhaven National Laboratory Condensed Matter Physics and Materials Science Department
  • Brookhaven National Laboratory
  • United States Department of Energy
  • Pacific Northwest National Laboratory
  • Canadian Institute for Advanced Studies

Research output: Contribution to journalArticlepeer-review

Abstract

We provide practical simulation methods for scalar field theories on a quantum computer that yield improved asymptotics as well as concrete gate estimates for the simulation and physical qubit estimates using the surface code. We achieve these improvements through two optimizations. First, we consider a finite volume approach for estimating the elements of the S-matrix. This approach is appropriate in general for 1+1D and for certain low-energy elastic collisions in higher dimensions. Second, we implement our approach using a series of different fault-tolerant simulation algorithms for Hamiltonians formulated both in the field occupation basis and field amplitude basis. Our algorithms are based on either second-order Trotterization or qubitization. The cost of Trotterization in occupation basis scales as O(λN7|Ω|3/(M5/23/2)) where λ is the coupling strength, N is the occupation cutoff, |Ω| is the volume of the spatial lattice, M is the mass of the particles and ∊ is the uncertainty in the energy calculation used for the S-matrix determination. Qubitization in the field basis scales as O(|Ω|2(k2Λ + kM2)/∊), where k is the cutoff in the field and Λ is a scaled coupling constant. We find in both cases that the bounds suggest physically meaningful simulations can be performed using on the order of 4 × 106 physical qubits and 1012 T-gates which corresponds to roughly one day on a superconducting quantum computer with surface code and a cycle time of 100 ns. This places the simulation of scalar field theory within striking distance of the gate counts for the best available chemistry simulation results.

Original languageEnglish
Article number010343
JournalPRX Quantum
Volume7
Issue number1
DOIs
StatePublished - Jan 2026

Fingerprint

Dive into the research topics of 'Scattering Processes from Quantum Simulation Algorithms for Scalar Field Theories'. Together they form a unique fingerprint.

Cite this