2-Form U(1) Spin Liquids: Classical Model and Quantum Aspects
Kristian Tyn Kai Chung, Michel J. P. Gingras

TL;DR
This paper introduces a classical spin liquid model with a 2-form Coulomb phase, explores its thermodynamics and excitations, and extends it to a quantum regime, proposing a new class of 2-form U(1) quantum spin liquids.
Contribution
It presents a novel classical spin vorticity model with a 2-form Coulomb phase and develops a quantum extension mapping to a 2-form U(1) gauge theory, revealing new quantum spin liquid phases.
Findings
Classical model exhibits algebraic correlations and extensive entropy.
Ground states decompose into membranes with fractionalized string excitations.
Quantum extension shows a stable gapless deconfined phase and a Rokhsar-Kivelson point.
Abstract
We introduce a novel geometrically frustrated classical Ising model, dubbed the "spin vorticity model", whose ground state manifold is a novel classical spin liquid, a "2-form Coulomb phase". We study the thermodynamics of this model both analytically and numerically, exposing the presence of algebraically decaying correlations and demonstrating an extensive ground state entropy, and give a comprehensive account of its ground state properties and excitations. Each classical ground state may be decomposed into collections of closed 2-dimensional membranes, supporting fractionalized string excitations attached to the boundaries of open membranes. At finite temperature, the model can then be described as a gas of closed strings in a background of fluctuating membranes. We demonstrate that the emergent gauge structure of the low-temperature phase is naturally captured in the formalism of…
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Taxonomy
TopicsQuantum many-body systems · Physics of Superconductivity and Magnetism · Advanced Condensed Matter Physics
