English

Quantum Electrodynamics in 2+1 Dimensions as the Organizing Principle of a Triangular Lattice Antiferromagnet

Strongly Correlated Electrons 2024-07-04 v2

Abstract

Quantum electrodynamics in 2+12+1 dimensions (QED3_3) has been proposed as a critical field theory describing the low-energy effective theory of a putative algebraic Dirac spin liquid or of quantum phase transitions in two-dimensional frustrated magnets. We provide compelling evidence that the intricate spectrum of excitations of the elementary but strongly frustrated J1J_1-J2J_2 Heisenberg model on the triangular lattice is in one-to-one correspondence to a zoo of excitations from QED3_3, in the quantum spin liquid regime. This includes a large manifold of explicitly constructed monopole and bilinear excitations of QED3_3, which is thus shown to serve as an organizing principle of phases of matter in triangular lattice antiferromagnets and their low-lying excitations. Moreover, we observe signatures of an emergent valence bond solid (VBS), which suggests a scenario where only the critical point of a transition from the 120120^\circ N\'eel order to a VBS is described by QED3_3. Our results are obtained by comparing ansatz wave functions from a parton construction to exact eigenstates obtained using large-scale exact diagonalization up to N=48N=48 sites.

Keywords

Cite

@article{arxiv.2303.01585,
  title  = {Quantum Electrodynamics in 2+1 Dimensions as the Organizing Principle of a Triangular Lattice Antiferromagnet},
  author = {Alexander Wietek and Sylvain Capponi and Andreas M. Läuchli},
  journal= {arXiv preprint arXiv:2303.01585},
  year   = {2024}
}

Comments

8 pages, 5 figures, including supplementary material