Finite frequency noise spectroscopy for fractional Hall states at ν = 5/2
arXiv:1511.05268 · doi:10.1088/1742-5468/2016/05/054010
Abstract
We investigate the finite frequency noise of a quantum point contact at filling factor ν = 5/2 using a weakly coupled resonant LC circuit as a detector. We show how one could spectroscopically address the fractional charged excitations inspecting separately their charge and scaling dimensions. We thus compare the behaviour of the Pfaffian and the anti-Pfaffian non-Abelian edge states models in order to give possible experimental signatures to identify the appropriate model for this fractional quantum Hall states. Finally we investigate how the temperature of the LC resonant circuit can be used in order to enhance the sensibility of the measurement scheme.
13 pages, 4 figures, Contribution to UPON2015, accepted in J. Stat. Mech. Theor. Exp
References in corpus (20)
- Non-Abelian Anyons and Topological Quantum Computation
- Particle-hole symmetry and the Pfaffian state
- Particle-Hole Symmetry and the Quantum Hall State
- Anyons and the quantum Hall effect - a pedagogical review
- Experimental Test of the High-Frequency Quantum Shot Noise Theory in a Quantum Point Contact
- The non-Abelian Interferometer
- Edge reconstruction in the fractional quantum Hall state
- Dynamical Coulomb Blockade of Shot Noise
- Tunable microwave impedance matching to a high impedance source using a Josephson metamaterial
- Charge tunneling in fractional edge channels
- Quantum Hall States at
- Relevance of multiple-quasiparticle tunneling between edge states at ν=p/(2np+1)
- Environmental induced renormalization effects in quantum Hall edge states
- Nonsymmetrized Correlations in Quantum Noninvasive Measurements
- Multiple quasiparticle Hall spectroscopy investigated with a resonant detector
- Shot-noise evidence of fractional quasiparticle creation in a local fractional quantum Hall state
- An apparent metal insulator transition in high mobility 2D InAs heterostructures
- Non-equilibrium noise in transport across a tunneling contact between fractional quantum Hall edges
- Detection of finite frequency current moments with a dissipative resonant circuit
- Tunnelling current through fractional quantum Hall interferometers