Person: Halperin, Bertrand
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Publication Resistance in Superconductors
(Word Scientific Publishing, 2010) Halperin, Bertrand; Refael, Gil; Demler, EugeneIn this pedagogical review, we discuss how electrical resistance can arise in superconductors. Starting with the idea of the superconducting order parameter as a condensate wave function, we introduce vortices as topological excitations with quantized phase winding, and we show how phase slips occur when vortices cross the sample. Superconductors exhibit non-zero electrical resistance under circumstances where phase slips occur at a finite rate. For one-dimensional superconductors or Josephson junctions, phase slips can occur at isolated points in space-time. Phase slip rates may be controlled by thermal activation over a free-energy barrier, or in some circumstances, at low temperatures, by quantum tunneling through a barrier. We present an overview of several phenomena involving vortices that have direct implications for the electrical resistance of superconductors, including the Berezinskii-Kosterlitz-Thouless transition for vortex-proliferation in thin films, and the effects of vortex pinning in bulk type II superconductors on the non-linear resistivity of these materials in an applied magnetic field. We discuss how quantum fluctuations can cause phase slips and review the non-trivial role of dissipation on such fluctuations. We present a basic picture of the superconductor-to-insulator quantum phase transitions in films, wires, and Josephson junctions. We point out related problems in superfluid helium films and systems of ultra-cold trapped atoms. While our emphasis is on theoretical concepts, we also briefly describe experimental results, and we underline some of the open questions.
Publication Superfluidity and Dimerization in a Multilayered System of Fermionic Polar Molecules
(American Physical Society, 2010) Potter, Andrew; Berg, Erez; Wang, Daw-Wei; Halperin, Bertrand; Demler, EugeneWe consider a layered system of fermionic molecules with permanent dipole moments aligned by an external field. The dipole interactions between fermions in adjacent layers are attractive and induce inter-layer pairing. Due to competition for pairing among adjacent layers, the mean-field ground state of the layered system is a dimerized superfluid, with pairing only between every-other layer. We construct an effective Ising-XY lattice model that describes the interplay between dimerization and superfluid phase fluctuations. In addition to the dimerized superfluid ground state, and high temperature normal state, at intermediate temperature, we find an unusual dimerized "pseudogap" state with only short-range phase coherence. We propose light scattering experiments to detect dimerization.
Publication Magnetoplasmon excitations and spin density instabilities in an integer quantum Hall system with a tilted magnetic field
(American Physical Society (APS), 2002) Wang, Daw-Wei; Das Sarma, S.; Demler, Eugene; Halperin, BertrandWe study the magnetoplasmon collective-mode excitations of integer quantum Hall systems in a paraboli- cally confined quantum well nanostructure in the presence of a tilted magnetic field by using the time- dependent Hartree-Fock approximation. For even integer filling, we find that the dispersion of a spin density mode has a magnetoroton minimum at finite wave vectors, at a few times 106 cm 1 for parallel fields of order 1–10 T, only in the direction perpendicular to the in-plane magnetic field, while the mode energy increases monotonously with wave vector parallel to the in-plane magnetic field. When the in-plane magnetic field is strong enough well above 10 T ,we speculate that this roton minimum may reach zero energy, suggesting a possible second-order phase transition to a state with broken translational and spin symmetries. We discuss the possibility for observing such parallel field-induced quantum phase transitions. We also derive an expression for the dielectric function within the time-dependent Hartree-Fock approximation and include screening effects in our magnetoplasmon calculation. We discuss several exotic symmetry-broken phases that may be stable in finite parallel fields, and propose that the transport anisotropy, observed recently in parallel field experiments, may be due to the formation of a skyrmion stripe phase predicted in our theory. Our predicted anisotropic finite wave-vector suppression, perhaps even a mode softening leading to the quantum phase transition to the anisotropic phase, in the collective spin excitation mode of the wide well system in the direction transverse to the applied parallel magnetic field should be directly experimentally observable via the inelastic light-scattering spectroscopy.
Publication Decay of superfluid currents in a moving system of strongly interacting bosons
(American Physical Society (APS), 2005) Polkovnikov, A.; Altman, E.; Demler, Eugene; Halperin, Bertrand; Lukin, MikhailWe analyze the stability and decay of supercurrents of strongly interacting bosons on optical lattices. At the mean-field level, the system undergoes an irreversible dynamic phase transition, whereby the current decays beyond a critical phase gradient that depends on the interaction strength. At commensurate filling the transition line smoothly interpolates between the classical modulational instability of weakly interacting bosons and the equilibrium Mott transition at zero current. Below the mean-field instability, the current can decay due to quantum and thermal phase slips. We derive asymptotic expressions of the decay rate near the critical current. In a three-dimensional optical lattice this leads to very weak broadening of the transition. In one and two dimensions the broadening leads to significant current decay well below the mean-field critical current. We show that the temperature scale below which quantum phase slips dominate the decay of supercurrents is easily within experimental reach.
Publication Transport in Two-Dimensional Disordered Semimetals
(American Physical Society (APS), 2014) Knap, Michael; Sau, Jay D.; Halperin, Bertrand; Demler, EugeneWe theoretically study transport in two-dimensional semimetals. Typically, electron and hole puddles emerge in the transport layer of these systems due to smooth fluctuations in the potential. We calculate the electric response of the electron-hole liquid subject to zero and finite perpendicular magnetic fields using an effective medium approximation and a complementary mapping on resistor networks. In the presence of smooth disorder and in the limit of a weak electron-hole recombination rate, we find for small but finite overlap of the electron and hole bands an abrupt upturn in resistivity when lowering the temperature but no divergence at zero temperature. We discuss how this behavior is relevant for several experimental realizations and introduce a simple physical explanation for this effect.
Publication Translational symmetry breaking in the superconducting state of the cuprates: Analysis of the quasiparticle density of states
(American Physical Society (APS), 2003) Podolsky, Daniel; Demler, Eugene; Damle, Kedar; Halperin, BertrandMotivated by recent scanning tuneling microscopy STM experiments on Bi2Sr2CaCu2O8 J. E. Hoffman et al., Science 295, 466 2002 ; C. Howald et al., cond-mat/0201546 unpublished ; J. E. Hoffman et al., Science 297, 1149 2002 : K. McElroy et al. unpublished ; C. Howald et al., cond-mat/0208442 unpub- lished , we study the effects of weak translational symmetry breaking on the quasiparticle spectrum of a d-wave superconductor. We develop a general formalism to discuss periodic charge order, as well as quasipar- ticle scattering off localized defects. We argue that the STM experiments in Bi2 Sr2 CaCu2 O8 cannot be explained using a simple charge density wave order parameter, but are consistent with the presence of a periodic modulation in the electron hopping or pairing amplitude. We review the effects of randomness and pinning of the charge order and compare it to the impurity scattering of quasiparticles. We also discuss implications of weak translational symmetry breaking for angle resolved photoemission spectroscopy experi- ments.
Publication Superfluid-Insulator Transition in a Moving System of Interacting Bosons
(American Physical Society (APS), 2005) Altman, E.; Polkovnikov, A.; Demler, Eugene; Halperin, Bertrand; Lukin, MikhailWe analyze the stability of superfluid currents in a system of strongly interacting ultracold atoms in an optical lattice. We show that such a system undergoes a dynamic, irreversible phase transition at a critical phase gradient that depends on the interaction strength between atoms. At commensurate filling, the phase boundary continuously interpolates between the classical modulation instability of a weakly interacting condensate and the equilibrium quantum phase transition into a Mott insulator state at which the critical current vanishes. We argue that quantum fluctuations smear the transition boundary in low dimensional systems. Finally we discuss the implications to realistic experiments.