Impurity-induced resonant spinon zero modes in Dirac quantum spin-liquids
arXiv:2005.06896 · doi:10.1103/PhysRevResearch.2.033466
Abstract
Quantum spin-liquids are strongly correlated phases of matter displaying a highly entangled ground state. Due to their unconventional nature, finding experimental signatures of these states has proven to be a remarkable challenge. Here we show that the effects of local impurities can provide strong signatures of a Dirac quantum spin-liquid state. Focusing on a gapless Dirac quantum spin-liquid state as realized in NaYbO, we show that single magnetic impurity coupled to the quantum spin-liquid state creates a resonant spinon peak at zero frequency, coexisting the original Dirac spinons. We explore the spatial dependence of this zero-bias resonance, and show how different zero modes stemming from several impurities interfere. We finally address how such spinon zero-mode resonances can be experimentally probed with inelastic spectroscopy and electrically-driven paramagnetic resonance with scanning tunnel microscopy. Our results put forward impurity engineering as a means of identifying Dirac quantum spin-liquids with scanning probe techniques, highlighting the dramatic impact of magnetic impurities in a macroscopically entangled many-body ground state.
9 pages, 6 figures, version 2
References in corpus (13)
- Magnetism in Graphene Induced by Single-Atom Defects
- Emergence of magnetism in graphene materials and nanostructures
- The Kernel Polynomial Method
- Flat Bands in Slightly Twisted Bilayer Graphene
- Hydrogen on graphene: Electronic structure, total energy, structural distortions, and magnetism from first-principles calculations
- Spin Dynamics of the Spin-1/2 Kagome Lattice Antiferromagnet ZnCu_3(OH)_6Cl_2
- Atomic-scale control of graphene magnetism using hydrogen atoms
- Disorder Induced Localized States in Graphene
- Vacancy induced magnetism in graphene and graphene ribbons
- Reading and Writing Single-Atom Magnets
- Quantum frustration in organic Mott insulators: from spin liquids to unconventional superconductors
- Engineering the eigenstates of coupled spin-1/2 atoms on a surface
- Orbital selective and tunable Kondo effect of magnetic adatoms on graphene: Correlated electronic structure calculations