Three-body interactions in Rydberg lattices
Abstract
Programmable arrays of neutral Rydberg atoms are one of the leading platforms today for scalable quantum simulation and computation. In these systems, the dipole-dipole interactions between the individual atoms, or qubits, typically result in binary -- i.e., two-body -- couplings. In this work, we develop an experimentally accessible scheme for engineering three-body interactions in Rydberg lattices. Such strong three-body couplings can fundamentally modify the underlying physics compared to systems with only two-body interactions: we demonstrate this, in particular, by systematically investigating the effective many-body Hamiltonian and its emergent quantum phases. This capability paves the way for the quantum simulation of a broader class of correlated models of condensed matter and high-energy physics.
Cite
@article{arxiv.2604.11870,
title = {Three-body interactions in Rydberg lattices},
author = {Rhine Samajdar and Mikhail D. Lukin and Valentin Walther},
journal= {arXiv preprint arXiv:2604.11870},
year = {2026}
}
Comments
8+8 pages, 5+5 figures