Zero-point fluctuations in the ground state of a mesoscopic normal ring
arXiv:cond-mat/0006440 · doi:10.1103/PhysRevB.63.165312
Abstract
We investigate the persistent current of a ring with an in-line quantum dot capacitively coupled to an external circuit. Of special interest is the magnitude of the persistent current as a function of the external impedance in the zero temperature limit when the only fluctuations in the external circuit are zero-point fluctuations. These are time-dependent fluctuations which polarize the ring-dot structure and we discuss in detail the contribution of displacement currents to the persistent current. We have earlier discussed an exact solution for the persistent current and its fluctuations based on a Bethe ansatz. In this work, we emphasize a physically more intuitive approach using a Langevin description of the external circuit. This approach is limited to weak coupling between the ring and the external circuit. We show that the zero temperature persistent current obtained in this approach is consistent with the persistent current calculated from a Bethe ansatz solution. In the absence of coupling our system is a two level system consisting of the ground state and the first excited state. In the presence of coupling we investigate the projection of the actual state on the ground state and the first exited state of the decoupled ring. With each of these projections we can associate a phase diffusion time. In the zero temperature limit we find that the phase diffusion time of the excited state projection saturates, whereas the phase diffusion time of the ground state projection diverges.
12 pages, 5 figures
References in corpus (10)
- Shot Noise in Mesoscopic Conductors
- Friedel phases and phases of transmission amplitudes in quantum scattering systems
- Low-Temperature Saturation of the Dephasing Time and Effects of Microwave Radiation on Open Quantum Dots
- Zero-Point Fluctuations and the Quenching of the Persistent Current in Normal Metal Rings
- Quantum Coherence of the Ground State of a Mesoscopic Ring
- Mesoscopic Kondo Effect in an Aharonov-Bohm Ring
- On the relationship between the noise-induced persistent current and dephasing rate
- Persistent Current in Normal Metals
- Measurements of flux dependent screening in Aharonov-Bohm rings
- Interaction and Quantum Decoherence in Disordered Conductors
Cited by in corpus (19)
- Charge fluctuation induced dephasing in a gated mesoscopic interferometer
- Entanglement dynamics in chains of qubits with noise and disorder
- Signatures of a Noise-Induced Quantum Phase Transition in a Mesoscopic Metal Ring
- Dissipation-driven quantum phase transitions in a Tomonaga-Luttinger liquid electrostatically coupled to a metallic gate
- Dephasing in sequential tunneling through a double-dot interferometer
- A modern review of the two-level approximation
- Ground State Energy Fluctuations of a System Coupled to a Bath
- Aharonov-Bohm ring with fluctuating flux
- Ground State Entanglement Energetics
- Effects of external radiation on biased Aharonov-Bohm rings
- Persistent currents in interacting Aharonov-Bohm interferometers and their enhancement by acoustic radiation
- Quantum electrodynamic fluctuations of the macroscopic Josephson phase
- Quantum Transport in an Array of Mesoscopic Rings: Effect of Interface Geometry
- Dephasing by two-level systems at zero temperature by unitary evolution
- Dynamical disappearance of superposition states in the thermodynamic limit
- Study of quantum current enhancement, eigenenergy spectra and magnetic moments in a multiply connected system at equilibrium
- Persistent Currents in Normal Metal Rings (Yale PhD thesis)
- Equilibrium currents in quantum double ring system: A non-trivial role of system-reservoir coupling
- Detection of persistent current correlation in cavity-QED