quantum physics

State preparation and detection for quantum simulation of particle collisions

arXiv:2607.26142

summary

The paper proposes practical protocols for preparing incoming wave‑packet states and detecting outgoing scattering products in analog and digital quantum simulators, using an auxiliary qubit or local quench for state preparation and boundary‑interference measurements for momentum extraction, and validates them on Rydberg and Ising chain models.

Abstract

Simulating the real-time dynamics of particle collisions is a promising application of quantum simulators, because classical methods such as tensor networks struggle to capture the highly entangled states generated in high-energy scattering. Realizing such simulations requires both the preparation of incoming wave packets and the detection of the outgoing scattering products. In this work, we propose protocols that address both challenges on programmable analog and digital quantum simulation platforms. Our state-preparation scheme uses a weakly coupled auxiliary qubit - or, more generally, a customized local quench - to inject a single quasiparticle with well-defined momentum. Because it relies only on conservation of energy, this scheme requires no fine-tuning or prior knowledge about particle eigenstates, making it robust against errors in calibration and implementation. The momenta of scattering products are then extracted, using only local measurements, from the interference pattern that arises when particles are reflected at the system's boundary. We validate our protocols through numerical simulations, first in a simple single-particle model and subsequently in two interacting many-body systems: a Rydberg atom chain and an Ising chain in a mixed field. We demonstrate how high-energy regimes, necessary to access inelastic scattering processes, can be reached through an adiabatic ramp, and how the wave packet shape can be optimized by spatially modulating the Hamiltonian. Finally, we show how the protocol can be generalized to systems with more than one spatial dimension. Our proposal provides a versatile approach to the quantum simulation of scattering phenomena, and is compatible with several quantum simulation platforms that are already experimentally available.

22 pages, 20 figures

Topics & keywords

#quantum simulation#state preparation#scattering detection#many-body dynamics#wave‑packet engineeringauxiliary qubitlocal quenchmomentum extractionRydberg atom chainIsing modeladiabatic ramp