Quenching the Superconducting State of Cuprate Compounds with Electric Currents: A Variational Study
arXiv:1001.4748 · doi:10.1103/PhysRevLett.104.257002
Abstract
We investigate the properties of cuprate superconductors subject to applied current, using modified Gutzwiller projected d-wave BCS states. The parent states include quasiparticle and quasihole pockets, of variationally determined size, generated by the current. We identify two different mechanisms for the destruction of superconductivity at the critical current: at high hole doping (x>0.15) the pockets grow and completely destroy the gap, in a BCS-like mechanism; in the underdoped regime, the superfluid stiffness vanishes at a maximal phase twist with pairing still intact. This result is indicative of a pseudogapped "normal" state which retains pairing correlations. The critical current as a function of doping displays a dome shape, similar to Tc. We predict unique signatures of the current induced Fermi pockets that can be seen in angle resolved photo emission spectroscopy.
4 pages, 4 figures, published version
References in corpus (5)
- Decay of a superfluid currents in a moving system of strongly interacting bosons
- Collective modes and superflow instabilities of strongly correlated Fermi superfluids
- Role of strong correlation in the recent ARPES experiments for cuprate superconductors
- A Variational Monte Carlo Study of the Current Carried by a Quasiparticle
- The interaction between the magnetic and superconducting order parameters in a La1.94Sr0.06CuO4 wire
Cited by in corpus (8)
- Nonequilibrium propagation and decay of a bound pair in driven t-J models
- Destroying coherence in high temperature superconductors with current flow
- Doping dependence of the critical current in Bi2Sr2CaCu2Oy
- Nature of the current-induced insulator-to-metal transition in CaRuO as revealed by transport-ARPES
- Flow-Induced Charge Modulation in Superfluid Atomic Fermions Loaded into an Optical Kagome Lattice
- Crucial role of Internal Collective Modes in Underdoped Cuprates
- Nonequilibrium probe of paired electron pockets in the underdoped cuprates
- Dissipative-regime measurements as a tool for confirming and characterizing near-room-temperature superconductivity