Two-point functions in a holographic Kondo model
Creators
- 1. Max-Planck-Institut für Physik (Werner-Heisenberg-Institut),Föhringer Ring 6, D-80805 Munich (Germany)
- 2. Institut für Theoretische Physik und Astrophysik, Julius-Maximilians-Universität Würzburg,Am Hubland, D-97074 Würzburg (Germany)
- 3. Department of Physics, Universidad de Oviedo, Avda. Calvo Sotelo 18, 33007, Oviedo (Spain)
- 4. STAG Research Centre, Physics and Astronomy, University of Southampton,Highfield, Southampton SO17 1BJ (United Kingdom)
- 5. SISSA and INFN - Sezione di Trieste, Via Bonomea 265, I 34136 Trieste (Italy)
- 6. Rudolf Peierls Centre for Theoretical Physics, University of Oxford,1 Keble Road, Oxford OX1 3NP (United Kingdom)
- 7. Department of Physics and Astronomy, University of Alabama, Tuscaloosa, AL 35487 (United States)
Description
We develop the formalism of holographic renormalization to compute two-point functions in a holographic Kondo model. The model describes a (0+1)-dimensional impurity spin of a gauged SU(N) interacting with a (1+1)-dimensional, large-N, strongly-coupled Conformal Field Theory (CFT). We describe the impurity using Abrikosov pseudo-fermions, and define an SU(N)-invariant scalar operator O built from a pseudo-fermion and a CFT fermion. At large N the Kondo interaction is of the form O†O, which is marginally relevant, and generates a Renormalization Group (RG) flow at the impurity. A second-order mean-field phase transition occurs in which O condenses below a critical temperature, leading to the Kondo effect, including screening of the impurity. Via holography, the phase transition is dual to holographic superconductivity in (1+1)-dimensional Anti-de Sitter space. At all temperatures, spectral functions of O exhibit a Fano resonance, characteristic of a continuum of states interacting with an isolated resonance. In contrast to Fano resonances observed for example in quantum dots, our continuum and resonance arise from a (0+1)-dimensional UV fixed point and RG flow, respectively. In the low-temperature phase, the resonance comes from a pole in the Green's function of the form −i〈O〉2, which is characteristic of a Kondo resonance.
Availability note (English)
Available from http://dx.doi.org/10.1007/JHEP03(2017)039; Available from http://repo.scoap3.org/record/19271Additional details
Identifiers
- URL
- http://repo.scoap3.org/record/19271;
- DOI
- 10.1007/JHEP03(2017)039;
- arXiv
- arXiv:1612.02005v2;
Publishing Information
- Journal Title
- Journal of High Energy Physics (Online)
- Journal Volume
- 2017
- Journal Issue
- 03
- Journal Page Range
- p. 39
- ISSN
- 1029-8479
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 49004206
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Descriptors DEI
- ANTI DE SITTER SPACE; CONFORMAL INVARIANCE; CRITICAL TEMPERATURE; DUALITY; FERMIONS; FIELD OPERATORS; GREEN FUNCTION; HOLOGRAPHIC PRINCIPLE; KONDO EFFECT; MATHEMATICAL MODELS; MEAN-FIELD THEORY; PHASE TRANSFORMATIONS; QUANTUM DOTS; QUANTUM FIELD THEORY; RENORMALIZATION; RESONANCE PARTICLES; SPECTRAL FUNCTIONS
- Descriptors DEC
- ELEMENTARY PARTICLES; FIELD THEORIES; FUNCTIONS; HADRONS; INVARIANCE PRINCIPLES; MATHEMATICAL OPERATORS; MATHEMATICAL SPACE; NANOSTRUCTURES; PHYSICAL PROPERTIES; QUANTUM OPERATORS; SPACE; THERMODYNAMIC PROPERTIES; TRANSITION TEMPERATURE
Optional Information
- Copyright
- Copyright (c) OPEN ACCESS, © The Authors
- Notes
- PUBLISHER-ID: JHEP03(2017)039; ARXIV:1612.02005; OAI: oai:repo.scoap3.org:19271
- Funding organization
- SCOAP3, CERN, Geneva (Switzerland)