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Broken-Symmetry Ground States of the Heisenberg model on the Pyrochlore Lattice

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TLDR
In this article, the spin-1/2 Heisenberg model on the pyrochlore lattice is investigated with an extensive numerical investigation using both exact diagonalization and complementary variational techniques.
Abstract
The spin-1/2 Heisenberg model on the pyrochlore lattice is an iconic frustrated three-dimensional spin system with a rich phase diagram. Besides hosting several ordered phases, the model is debated to possess a spin-liquid ground state when only nearest-neighbor antiferromagnetic interactions are present. Here, we contest this hypothesis with an extensive numerical investigation using both exact diagonalization and complementary variational techniques. Specifically, we employ a RVB-like many-variable Monte Carlo ansatz and convolutional neural network quantum states for (variational) calculations with up to $4\times 4^3$ and $4 \times 3^3$ spins, respectively. We demonstrate that these techniques yield consistent results, allowing for reliable extrapolations to the thermodynamic limit. Our main results are (1) the determination of the phase transition between the putative spin-liquid phase and the neighboring magnetically ordered phase and (2) a careful characterization of the ground state in terms of symmetry-breaking tendencies. We find clear indications of spontaneously broken inversion and rotational symmetry, calling the scenario of a featureless quantum spin-liquid into question. Our work showcases how many-variable variational techniques can be used to make progress in answering challenging questions about three-dimensional frustrated quantum magnets.

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Journal Article

Coulombic Quantum Liquids in Spin-1/2 Pyrochlores

TL;DR: A nonperturbative gauge mean field theory method is developed to study a general effective spin-1/2 model for magnetism in rare earth pyrochlores and shows that the full phase diagram contains two exotic phases: a quantum spin liquid and a Coulombic ferromagnet.
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Quantum and classical phases of the pyrochlore Heisenberg model with competing interactions

TL;DR: In this article, the authors investigated the quantum Heisenberg model on the pyrochlore lattice for a generic spin-S$ in the presence of nearest-neighbor $J_{1}$ and second-nearest-nodes-J_{2}$ exchange interactions.
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Phase Diagram of a Frustrated Quantum Antiferromagnet on the Honeycomb Lattice: Magnetic Order versus Valence-Bond Crystal Formation

TL;DR: In this paper, the phase diagram of the frustratedS = 1=2 Heisenberg antiferromagnet on the honeycomb lattice, with second-nearest (J2) and third-neighbor (J3) couplings, was analyzed using a combination of exact diagonalizations of the original spin model, of the Hamiltonian projected into the nearest neighbor short range valence bond basis, and of an effective quantum dimer model, as well as a selfconsistent cluster mean-field theory.
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Neural-network quantum state tomography

TL;DR: In this paper, machine learning techniques are used to perform quantum state tomography (QST) of highly entangled states with more than a hundred qubits, to a high degree of accuracy.
References
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TL;DR: This review discusses the nature of such phases and their properties based on paradigmatic models and general arguments, and introduces theoretical technology such as gauge theory and partons, which are conveniently used in the study of quantum spin liquids.
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