Flux-charge duality and topological quantum phase fluctuations in quasi-one-dimensional superconductors
arXiv:1201.1859 · doi:10.1088/1367-2630/15/10/105017
Abstract
It has long been thought that macroscopic phase coherence breaks down in effectively lower-dimensional superconducting systems even at zero temperature due to enhanced topological quantum phase fluctuations. In quasi-1D wires, these fluctuations are described in terms of "quantum phase-slip" (QPS): tunneling of the superconducting order parameter for the wire between states differing by in their relative phase between the wire's ends. Over the last several decades, many deviations from conventional bulk superconducting behavior have been observed in ultra-narrow superconducting nanowires, some of which have been identified with QPS. While at least some of the observations are consistent with existing theories for QPS, other observations in many cases point to contradictory conclusions or cannot be explained by these theories. Hence, a unified understanding of the nature of QPS, and its relationship to the various observations has yet to be achieved. In this paper we present a new model for QPS which takes as its starting point an idea originally postulated by Mooij and Nazarov [Nature Physics {\bf 2}, 169 (2006)]: that \textit{flux-charge duality}, a classical symmetry of Maxwell's equations, can be used to relate QPS to the well-known Josephson tunneling of Cooper pairs. Our model provides an alternative, and qualitatively different, conceptual basis for QPS and the phenomena which arise from it in experiments, and it appears to permit for the first time a unified understanding of observations across several different types of experiments and materials systems.
48 Institute of Physics pages, plus 7 pages of appendices and 7 pages of references. 12 figures. v7: additional experimental data considered, and overall improvement for final submission
References in corpus (22)
- Localization of preformed Cooper-pairs in disordered superconductors
- Driving phase slips in a superfluid atom circuit with a rotating weak link
- Coherent quantum phase slip
- Implementation of low-loss superinductances for quantum circuits
- Localized Superconductivity in the Quantum-Critical Region of the Disorder-Driven Superconductor-Insulator Transition in TiN Thin Films
- Phase fluctuations in a strongly disordered s-wave superconductor close to the metal-insulator transition
- Vortex proliferation in the Berezinskii-Kosterlitz-Thouless regime on a two-dimensional lattice of Bose-Einstein condensates
- Quantum Superinductor with Tunable Non-Linearity
- Quantum fluctuations in ultranarrow superconducting nanowires
- Universal conductance of nanowires near the superconductor-metal quantum transition
- Quantum phase slip interference device based on superconducting nanowire
- Coulomb blockade and Bloch oscillations in superconducting Ti nanowires
- Superinsulator-Superconductor Duality in Two Dimensions
- NbSi nanowire quantum-phase-slip circuits: dc supercurrent blockade, microwave measurements and thermal analysis
- Quantum phase slip phenomenon in ultra-narrow superconducting nanorings
- Determination of the Superconductor-Insulator Phase Diagram for One-Dimensional Wires
- Quantitative analysis of quantum phase slips in superconducting MoGe nanowires revealed by switching-current statistics
- One-dimensional resistive states in quasi-two-dimensional superconductors
- Quantum phase slips in superconducting wires with weak inhomogeneities
- Sharp Superconductor-Insulator Transition in Short Wires
- Quantum phase slips in the presence of finite-range disorder
- Quantum mechanics of superconducting nanowires
Cited by in corpus (13)
- Coherent Flux Tunneling Through NbN Nanowires
- Absence of a dissipative quantum phase transition in Josephson junctions
- Dual approach to circuit quantization using loop charges
- Emergence of Quantum Phase-Slip Behaviour in Superconducting NbN Nanowires: DC Electrical Transport and Fabrication Technologies
- Symplectic geometry and circuit quantization
- Superconducting-semiconductor quantum devices: from qubits to particle detectors
- Charge-based superconducting digital logic family using quantum phase-slip junctions
- Collective quantum phase slips in multiple nanowire junctions
- Dephasing in Fluxonium Qubits from Coherent Quantum Phase Slips
- Flux-charge symmetric theory of superconducting circuits
- Linear response theory of Josephson junction arrays in a microwave cavity
- Gate-controlled conductance of superconducting NbN nanowires: coherent quantum phase-slips or Coulomb blockade?
- An Electromagnetic-Flux-Distribution Model for the Analyses of Superconducting Josephson Junction Circuits and Quantum Phase-Slip Junction Circuits