arXiv · 1304.4938
Deconfined Quantum Criticality and Conformal Phase Transition in Two-Dimensional Antiferromagnets
Abstract
Deconfined quantum criticality of two-dimensional $SU(2)$ quantum antiferromagnets featuring a transition from an antiferromagnetically ordered ground state to a so-called valence-bond solid state, is governed by a non-compact CP$^1$ model with a Maxwell term in 2+1 spacetime dimensions. We introduce a new perspective on deconfined quantum criticality within a field-theoretic framework based on an expansion in powers of $ε=4-d$ for fixed number $N$ of complex matter fields. We show that in the allegedly weak first-order transition regime, a so-called conformal phase transition leads to a genuine deconfined quantum critical point. In such a transition, the gap vanishes when the critical point is approached from above and diverges when it is approached from below. We also find that the spin stiffness has a universal jump at the critical point.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Flavio S. Nogueira, Asle Sudbo. 2013-12-23. Deconfined Quantum Criticality and Conformal Phase Transition in Two-Dimensional Antiferromagnets. https://doi.org/10.1209/0295-5075%2F104%2F56004
Cite the original work for its findings. Save a collection to share your selection of sources.