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Monte Carlo Study of Lattice Compact Quantum Electrodynamics with Fermionic Matter: the Parent State of Quantum Phases

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arxiv 1807.07574 v3 pith:UI5LMWUU submitted 2018-07-19 cond-mat.str-el hep-lat

classification cond-mat.str-elhep-lat
keywords quantumphasesgaugematterdeconfinedphasefermionicflavors
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The interplay between lattice gauge theories and fermionic matter accounts for fundamental physical phenomena ranging from the deconfinement of quarks in particle physics to quantum spin liquid with fractionalized anyons and emergent gauge structures in condensed matter physics. However, except for certain limits (for instance large number of flavors of matter fields), analytical methods can provide few concrete results. Here we show that the problem of compact $U(1)$ lattice gauge theory coupled to fermionic matter in $(2+1)$D is possible to access via sign-problem-free quantum Monte Carlo simulations. One can hence map out the phase diagram as a function of fermion flavors and the strength of gauge fluctuations. By increasing the coupling constant of the gauge field, gauge confinement in the form of various spontaneous symmetry breaking phases such as valence bond solid (VBS) and N\'eel antiferromagnet emerge. Deconfined phases with algebraic spin and VBS correlation functions are also observed. Such deconfined phases are an incarnation of exotic states of matter, $i.e.$ the algebraic spin liquid, which is generally viewed as the parent state of various quantum phases. The phase transitions between deconfined and confined phases, as well as that between the different confined phases provide various manifestations of deconfined quantum criticality. In particular, for four flavors, $N_f = 4$, our data suggests a continuous quantum phase transition between the VBS and N\'{e}el order. We also provide preliminary theoretical analysis for these quantum phase transitions.

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Cited by 3 Pith papers

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  1. Hyperdeterminant wavefunctions

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    Hyperdeterminant wavefunctions with a locality structure, plus VMPI effective theories and projective expansion, give a practical variational framework for fractional Chern insulators and quantum spin liquids.

  2. Numerical determination of monopole scaling dimension in parity-invariant three-dimensional non-compact QED

    hep-lat 2019-08 conditional novelty 7.0 of 10

    Monte Carlo measurement gives monopole scaling dimension Delta(12)=3.24(24), consistent with large-N theory, and positive finite-N corrections for N=2,4 that disagree in sign with the leading 1/N expansion.

  3. (2+1)D quantum electrodynamics at finite density on a quantum computer

    hep-lat 2025-09 conditional novelty 6.0 of 10

    A VQE circuit that enforces Gauss's law identifies particle-number phase transitions in two-flavor (2+1)D QED on a 2x2 lattice, with inference runs on IBM hardware.

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