Topological spinon bands and vison excitations in spin-orbit coupled quantum spin liquids
arXiv:1707.07306 · doi:10.1103/PhysRevB.96.235113
Abstract
Spin liquids are exotic quantum states characterized by the existence of fractional and deconfined quasiparticle excitations, referred to as spinons and visons. Their fractional nature establishes topological properties such as a protected ground-state degeneracy. This work investigates spin-orbit coupled spin liquids where, additionally, topology enters via non-trivial band structures of the spinons. We revisit the spin-liquid phases that have recently been identified in a projective symmetry-group analysis on the square lattice when spin-rotation symmetry is maximally lifted [Phys. Rev. B 90, 174417 (2014)]. We find that in the case of nearest neighbor couplings only, spin liquids on the square lattice always exhibit trivial spinon bands. Adding second neighbor terms, the simplest projective symmetry-group solution closely resembles the Bernevig-Hughes-Zhang model for topological insulators. Assuming that the emergent gauge fields are static we investigate vison excitations, which we confirm to be deconfined in all investigated spin phases. Particularly, if the spinon bands are topological, the spinons and visons form bound states consisting of several spinon-Majorana zero modes coupling to one vison. The existence of such zero modes follows from an exact mapping between these spin phases and topological superconductors with vortices. We propose experimental probes to detect such states in real materials.
16 pages, 7 figures
References in corpus (22)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Topological Insulators with Inversion Symmetry
- Topological Crystalline Insulators
- The Quantum Spin Hall Effect: Theory and Experiment
- The space group classification of topological band insulators
- Exact results for spin dynamics and fractionization in the Kitaev Model
- An exact chiral spin liquid with non-Abelian anyons
- Topological characterization of quantum phase transitions in a S=1/2 spin model
- On the stability of U(1) spin liquids in two dimensions
- On the classification of Quantum Spin Hall Models
- Spin Liquid States on the Triangular and Kagome Lattices: A Projective Symmetry Group Analysis of Schwinger Boson States
- Classifying fractionalization: symmetry classification of gapped Z2 spin liquids in two dimensions
- Splitting of Majorana modes due to intervortex tunneling in a p + ip superconductor
- Zero modes of two-dimensional chiral p-wave superconductors
- Weyl spin liquids
- Time-reversal-symmetry-breaking chiral spin liquids: a projective symmetry group approach of bosonic mean-field theories
- Spin liquids on a honeycomb lattice: Projective Symmetry Group study of Schwinger fermion mean-field theory
- spin liquid and chiral antiferromagnetic phase in Hubbard model on the honeycomb lattice: duality between Schwinger-fermion and Schwinger-boson representations
- Interplay of non-symmorphic symmetry and spin-orbit coupling in hyperkagome spin liquids: Applications to NaIrO
- Classification of spin liquids on the square lattice with strong spin-orbit coupling
- Zero energy and chiral edge modes in a p-wave magnetic spin model