711 research outputs found

    Entanglement production in the dynamical Casimir effect at parametric resonance

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    The particles produced from the vacuum in the dynamical Casimir effect are highly entangled. In order to quantify the correlations generated by the process of vacuum decay induced by moving mirrors, we study the entanglement evolution in the dynamical Casimir effect by computing the time-dependent R\'enyi and von Neumann entanglement entropy analytically in arbitrary dimensions. We consider the system at parametric resonance, where the effect is enhanced. We find that, in (1+1) dimensions, the entropies grow logarithmically for large times, SA(τ)12log(τ)S_A(\tau)\sim\frac{1}{2}\log(\tau), while in higher dimensions (n+1) the growth is linear, SA(t)λτS_A(t)\sim \lambda\,\tau where λ\lambda can be identified with the Lyapunov exponent of a classical instability in the system. In (1+1)(1+1) dimensions, strong interactions among field modes prevent the parametric resonance from manifesting as a Lyapunov instability, leading to a sublinear entropy growth associated with a constant rate of particle production in the resonant mode. Interestingly, the logarithmic growth comes with a pre-factor with 1/21/2 which cannot occur in time-periodic systems with finitely many degrees of freedom and is thus a special property of bosonic field theories.Comment: 17 pages, 5 figure

    Electron interactions and charge ordering in La2x_{2-x}Srx_xCuO4_4

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    We present results of inelastic light scattering experiments on single-crystalline La2x_{2-x}Srx_{x}CuO4_4 in the doping range 0.00x=p0.300.00 \le x=p \le 0.30 and Tl2_2Ba2_2CuO6+δ_{6+\delta} at p=0.20p=0.20 and p=0.24p=0.24. The main emphasis is placed on the response of electronic excitations in the antiferromagnetic phase, in the pseudogap range, in the superconducting state, and in the essentially normal metallic state at x0.26x \ge 0.26, where no superconductivity could be observed. In most of the cases we compare B1g_{1g} and B2g_{2g} spectra which project out electronic properties close to (π,0)(\pi,0) and (π/2,π/2)(\pi/2, \pi/2), respectively. In the channel of electron-hole excitations we find universal behavior in B2g_{2g} symmetry as long as the material exhibits superconductivity at low temperature. In contrast, there is a strong doping dependence in B1g_{1g} symmetry: (i) In the doping range 0.20p0.250.20 \le p \le 0.25 we observe rapid changes of shape and temperature dependence of the spectra. (ii) In La2x_{2-x}Srx_{x}CuO4_4 new structures appear for x<0.13x < 0.13 which are superposed on the electron-hole continuum. The temperature dependence as well as model calculations support an interpretation in terms of charge-ordering fluctuations. For x0.05x \le 0.05 the response from fluctuations disappears at B1g_{1g} and appears at B2g_{2g} symmetry in full agreement with the orientation change of stripes found by neutron scattering. While, with a grain of salt, the particle-hole continuum is universal for all cuprates the response from fluctuating charge order in the range 0.05p<0.160.05 \le p < 0.16 is so far found only in La2x_{2-x}Srx_{x}CuO4_4. We conclude that La2x_{2-x}Srx_{x}CuO4_4 is close to static charge order and, for this reason, may have a suppressed TcT_c.Comment: 17 pages, 15 figure

    Frustrated spin order and stripe fluctuations in FeSe

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    The charge and spin dynamics of the structurally simplest iron-based superconductor, FeSe, may hold the key to understanding the physics of high temperature superconductors in general. Unlike the iron pnictides, FeSe lacks long range magnetic order in spite of a similar structural transition around 90\,K. Here, we report results of Raman scattering experiments as a function of temperature and polarization and simulations based on exact diagonalization of a frustrated spin model. Both experiment and theory find a persistent low energy peak close to 500cm1^{-1} in B1gB_{1g} symmetry, which softens slightly around 100\,K, that we assign to spin excitations. By comparing with results from neutron scattering, this study provides evidence for nearly frustrated stripe order in FeSe.Comment: 12 pages, 12 figure

    Nernst effect of iron pnictide and cuprate superconductors: signatures of spin density wave and stripe order

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    The Nernst effect has recently proven a sensitive probe for detecting unusual normal state properties of unconventional superconductors. In particular, it may sensitively detect Fermi surface reconstructions which are connected to a charge or spin density wave (SDW) ordered state, and even fluctuating forms of such a state. Here we summarize recent results for the Nernst effect of the iron pnictide superconductor LaO1xFxFeAs\rm LaO_{1-x}F_xFeAs, whose ground state evolves upon doping from an itinerant SDW to a superconducting state, and the cuprate superconductor La1.8xEu0.2SrxCuO4\rm La_{1.8-x}Eu_{0.2}Sr_xCuO_4 which exhibits static stripe order as a ground state competing with the superconductivity. In LaO1xFxFeAs\rm LaO_{1-x}F_xFeAs, the SDW order leads to a huge Nernst response, which allows to detect even fluctuating SDW precursors at superconducting doping levels where long range SDW order is suppressed. This is in contrast to the impact of stripe order on the normal state Nernst effect in La1.8xEu0.2SrxCuO4\rm La_{1.8-x}Eu_{0.2}Sr_xCuO_4. Here, though signatures of the stripe order are detectable in the temperature dependence of the Nernst coefficient, its overall temperature dependence is very similar to that of La2xSrxCuO4\rm La_{2-x}Sr_xCuO_4, where stripe order is absent. The anomalies which are induced by the stripe order are very subtle and the enhancement of the Nernst response due to static stripe order in La1.8xEu0.2SrxCuO4\rm La_{1.8-x}Eu_{0.2}Sr_xCuO_4 as compared to that of the pseudogap phase in La2xSrxCuO4\rm La_{2-x}Sr_xCuO_4, if any, is very small.Comment: To appear in: 'Properties and applications of thermoelectric materials - II', V. Zlatic and A. Hewson, editors, Proceedings of NATO Advanced Research Workshop, Hvar, Croatia, September 19 -25, 2011, NATO Science for Peace and Security Series B: Physics and Biophysics, (Springer Science+Business Media B.V. 2012

    Wilson chains are not thermal reservoirs

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    Wilson chains, based on a logarithmic discretization of a continuous spectrum, are widely used to model an electronic (or bosonic) bath for Kondo spins and other quantum impurities within the numerical renormalization group method and other numerical approaches. In this short note we point out that Wilson chains can not serve as thermal reservoirs as their temperature changes by a number of order Delta E when a finite amount of energy Delta E is added. This proves that for a large class of non-equilibrium problems they cannot be used to predict the long-time behavior.Comment: 2 page

    Inelastic Light Scattering From Correlated Electrons

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    Inelastic light scattering is an intensively used tool in the study of electronic properties of solids. Triggered by the discovery of high temperature superconductivity in the cuprates and by new developments in instrumentation, light scattering both in the visible (Raman effect) and the X-ray part of the electromagnetic spectrum has become a method complementary to optical (infrared) spectroscopy while providing additional and relevant information. The main purpose of the review is to position Raman scattering with regard to single-particle methods like angle-resolved photoemission spectroscopy (ARPES), and other transport and thermodynamic measurements in correlated materials. Particular focus will be placed on photon polarizations and the role of symmetry to elucidate the dynamics of electrons in different regions of the Brillouin zone. This advantage over conventional transport (usually measuring averaged properties) indeed provides new insights into anisotropic and complex many-body behavior of electrons in various systems. We review recent developments in the theory of electronic Raman scattering in correlated systems and experimental results in paradigmatic materials such as the A15 superconductors, magnetic and paramagnetic insulators, compounds with competing orders, as well as the cuprates with high superconducting transition temperatures. We present an overview of the manifestations of complexity in the Raman response due to the impact of correlations and developing competing orders. In a variety of materials we discuss which observations may be understood and summarize important open questions that pave the way to a detailed understanding of correlated electron systems.Comment: 62 pages, 48 figures, to appear in Rev. Mod. Phys. High-resolution pdf file available at http://onceler.uwaterloo.ca/~tpd/RMP.pd

    Charge transfer fluctuation, dd-wave superconductivity, and the B1gB_{1g} Raman phonon in the Cuprates: A detailed analysis

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    The Raman spectrum of the B1gB_{1g} phonon in the superconducting cuprate materials is investigated theoretically in detail in both the normal and superconducting phases, and is contrasted with that of the A1gA_{1g} phonon. A mechanism involving the charge transfer fluctuation between the two oxygen ions in the CuO2_2 plane coupled to the crystal field perpendicular to the plane is discussed and the resulting electron-phonon coupling is evaluated. Depending on the symmetry of the phonon the weight of different parts of the Fermi surface in the coupling is different. This provides the opportunity to obtain information on the superconducting gap function at certain parts of the Fermi surface. The lineshape of the phonon is then analyzed in detail both in the normal and superconducting states. The Fano lineshape is calculated in the normal state and the change of the linewidth with temperature below Tc_{c} is investigated for a dx2y2d_{x^{2}-y^{2}} pairing symmetry. Excellent agreement is obtained for the B1gB_{1g} phonon lineshape in YBa2_{2}Cu3_{3}O7_{7}. These experiments, however, can not distinguish between dx2y2d_{x^{2}-y^{2}} and a highly anisotropic ss-wave pairing.Comment: Revtex, 21 pages + 4 postscript figures appended, tp

    Stripe order and quasiparticle Nernst effect in cuprate superconductors

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    After a brief review of current ideas on stripe order in cuprate high-temperature superconductors, we discuss the quasiparticle Nernst effect in the cuprates, with focus on its evolution in non-superconducting stripe and related nematic states. In general, we find the Nernst signal to be strongly enhanced by nearby van-Hove singularities and Lifshitz transitions in the band structure, implying that phases with translation symmetry breaking often lead to a large quasiparticle Nernst effect due to the presence of multiple small Fermi pockets. Open orbits may contribute to the Nernst signal as well, but do so in a strongly anisotropic fashion. We discuss our results in the light of recent proposals for a specific Lifshitz transition in underdoped YBCO and make predictions for the doping dependence of the Nernst signal.Comment: 10 pages, 4 figs, article prepared for a special issue of New J Phy
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