Related Experiment Video
Updated: Nov 20, 2025

Experimental Methods for Trapping Ions Using Microfabricated Surface Ion Traps
Published on: August 17, 2017
Quantum phases of Rydberg atoms on a kagome lattice
Rhine Samajdar1, Wen Wei Ho2,3, Hannes Pichler4,5
1Department of Physics, Harvard University, Cambridge, MA 02138; sachdev@g.harvard.edu rhine_samajdar@g.harvard.edu.
Abstract:
We analyze the zero-temperature phases of an array of neutral atoms on the kagome lattice, interacting via laser excitation to atomic Rydberg states. Density-matrix renormalization group calculations reveal the presence of a wide variety of complex solid phases with broken lattice symmetries. In addition, we identify a regime with dense Rydberg excitations that has a large entanglement entropy and no local order parameter associated with lattice symmetries. From a mapping to the triangular lattice quantum dimer model, and theories of quantum phase transitions out of the proximate solid phases, we argue that this regime could contain one or more phases with topological order. Our results provide the foundation for theoretical and experimental explorations of crystalline and liquid states using programmable quantum simulators based on Rydberg atom arrays.
Related Concept Videos
The de Broglie Wavelength
The Quantum-Mechanical Model of an Atom
The Bohr Model
Atomic Orbitals
Trends in Lattice Energy: Ion Size and Charge
Electronic Structure of Atoms
An atom comprises protons and neutrons, which are contained inside the dense, central core called the nucleus, with electrons present around the nucleus. Taking into account the wave–particle duality of electrons and the uncertainty in position around the nucleus, quantum mechanics provides a more accurate model for the atomic structure. It describes atomic orbitals as the regions around the nucleus where electrons of discrete energy exist, characterized by four quantum...

