Complex Density Wave Orders and Quantum Phase Transitions in a Model of Square-Lattice Rydberg Atom Arrays

We describe the zero-temperature phase diagram of a model of a two-dimensional square-lattice array of neutral atoms, excited into Rydberg states and interacting via strong van der Waals interactions. Using the density-matrix renormalization group algorithm, we map out the phase diagram and obtain a...

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Bibliographic Details
Published inPhysical review letters Vol. 124; no. 10; p. 103601
Main Authors Samajdar, Rhine, Ho, Wen Wei, Pichler, Hannes, Lukin, Mikhail D, Sachdev, Subir
Format Journal Article
LanguageEnglish
Published United States 13.03.2020
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ISSN0031-9007
1092-0145
1079-7114
1079-7114
DOI10.1103/PhysRevLett.124.103601

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Summary:We describe the zero-temperature phase diagram of a model of a two-dimensional square-lattice array of neutral atoms, excited into Rydberg states and interacting via strong van der Waals interactions. Using the density-matrix renormalization group algorithm, we map out the phase diagram and obtain a rich variety of phases featuring complex density wave orderings, upon varying lattice spacing and laser detuning. While some of these phases result from the classical optimization of the van der Waals energy, we also find intrinsically quantum-ordered phases stabilized by quantum fluctuations. These phases are surrounded by novel quantum phase transitions, which we analyze by finite-size scaling numerics and Landau theories. Our work highlights Rydberg quantum simulators in higher dimensions as promising platforms to realize exotic many-body phenomena.
ISSN:0031-9007
1092-0145
1079-7114
1079-7114
DOI:10.1103/PhysRevLett.124.103601