Frozen Deconfined Quantum Criticality

被引:5
|
作者
Shyta, Vira [1 ,2 ]
van den Brink, Jeroen [1 ,3 ]
Nogueira, Flavio S. [1 ]
机构
[1] IFW Dresden, Inst Theoret Solid State Phys, Helmholtzstr 20, D-01069 Dresden, Germany
[2] Kyiv Acad Univ, Dept Theoret & Math Phys, 36 Vernadsky Blvd, UA-03142 Kiev, Ukraine
[3] Tech Univ Dresden, Inst Theoret Phys & Wurzburg Dresden Cluster Exce, D-01069 Dresden, Germany
关键词
PHASE-TRANSITIONS; SUPERCONDUCTORS; RENORMALIZATION; DUALITY; MODEL;
D O I
10.1103/PhysRevLett.129.227203
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
There is a number of contradictory findings with regard to whether the theory describing easy-plane quantum antiferromagnets undergoes a second-order phase transition. The traditional Landau-GinzburgWilson approach suggests a first-order phase transition, as there are two different competing order parameters. On the other hand, it is known that the theory has the property of self-duality which has been connected to the existence of a deconfined quantum critical point (DQCP). The latter regime suggests that order parameters are not the elementary building blocks of the theory, but rather consist of fractionalized particles that are confined in both phases of the transition and only appear-deconfine-at the critical point. Nevertheless, many numerical Monte Carlo simulations disagree with the claim of a DQCP in the system, indicating instead a first-order phase transition. Here we establish from exact lattice duality transformations and renormalization group analysis that the easy-plane CP1 antiferromagnet does feature a DQCP. We uncover the criticality starting from a regime analogous to the zero temperature limit of a certain classical statistical mechanics system which we therefore dub frozen. At criticality our bosonic theory is dual to a fermionic one with two massless Dirac fermions, which thus undergoes a second-order phase transition as well.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Corrections to scaling in the critical theory of deconfined criticality
    Bartosch, Lorenz
    PHYSICAL REVIEW B, 2013, 88 (19):
  • [32] Quantum valley Hall effect in proximity-induced superconducting graphene: An experimental window for deconfined quantum criticality
    Ghaemi, Pouyan
    Ryu, Shinsei
    Lee, Dung-Hai
    PHYSICAL REVIEW B, 2010, 81 (08):
  • [33] Anisotropic deconfined criticality in Dirac spin liquids
    Shackleton, Henry
    Sachdev, Subir
    JOURNAL OF HIGH ENERGY PHYSICS, 2022, 2022 (07)
  • [34] Deconfined Criticality in the Frustrated Heisenberg Honeycomb Antiferromagnet
    Ganesh, R.
    van den Brink, Jeroen
    Nishimoto, Satoshi
    PHYSICAL REVIEW LETTERS, 2013, 110 (12)
  • [35] Anisotropic deconfined criticality in Dirac spin liquids
    Henry Shackleton
    Subir Sachdev
    Journal of High Energy Physics, 2022
  • [36] Valence bond solid and possible deconfined quantum criticality in an extended kagome lattice Heisenberg antiferromagnet
    Wietek, Alexander
    Laeuchli, Andreas M.
    PHYSICAL REVIEW B, 2020, 102 (02)
  • [37] The (2+1)-d U(1) quantum link model masquerading as deconfined criticality
    Banerjee, D.
    Jiang, F. -J.
    Widmer, P.
    Wiese, U-J
    JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT, 2013,
  • [38] Boundary-deconfined quantum criticality at transitions between symmetry-protected topological chains
    Prembabu, Saranesh
    Thorngren, Ryan
    Verresen, Ruben
    PHYSICAL REVIEW B, 2024, 109 (20)
  • [39] Continuous phase transition between bosonic integer quantum Hall liquid and a trivial insulator: Evidence for deconfined quantum criticality
    Zeng, Tian-Sheng
    Sheng, D. N.
    Zhu, W.
    PHYSICAL REVIEW B, 2020, 101 (03)
  • [40] Frustrated Heisenberg antiferromagnets:: Fluctuation-induced first order vs. deconfined quantum criticality
    Krüger, F
    Scheidl, S
    EUROPHYSICS LETTERS, 2006, 74 (05): : 896 - 902