79,156 research outputs found

    Residual effect on the robustness of multiqubit entanglement

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    We investigate the relation between the entanglement and the robustness of a multipartite system to a depolarization noise. We find that the robustness of a two-qubit system in an arbitrary pure state depends completely on its entanglement. However, this is not always true in a three-qubit system. There is a residual effect on the robustness of a three-qubit system in an arbitrary superposition of Greenberger-Horne-Zeilinger state and W state. Its entanglement determines the trend of its robustness. However, there is a splitting on its robustness under the same entanglement. Its robustness not only has the same periodicity as its three-tangle but also alters with its three-tangle synchronously. There is also a splitting on the robustness of an nn-qubit (n>3n>3) system although it is more complicated.Comment: 5 pages, 4 figures; A figure is added, compared with the version published in Phys. Rev. A 82, 014301 (2010

    Transition magnetic moment of Majorana neutrinos in the μν\mu\nuSSM

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    The nonzero vacuum expectative values of sneutrinos induce spontaneously R-parity and lepton number violation, and generate three tiny Majorana neutrino masses through the seesaw mechanism in the μν\mu\nuSSM, which is one of Supersymmetric extensions beyond Standard Model. Applying effective Lagrangian method, we study the transition magnetic moment of Majorana neutrinos in the model here. Under the constraints from neutrino oscillations, we consider the two possibilities on the neutrino mass spectrum with normal or inverted ordering.Comment: 20 pages, 2 figures, accepted for publication in JHEP. arXiv admin note: text overlap with arXiv:1305.4352, arXiv:1304.624

    Weak Decays of Doubly Heavy Baryons: the 1/21/21/2\to 1/2 case

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    Very recently, the LHCb collaboration has observed in the final state Λc+Kπ+π+\Lambda_c^+ K^-\pi^+\pi^+ a resonant structure that is identified as the doubly-charmed baryon Ξcc++\Xi_{cc}^{++}. Inspired by this observation, we investigate the weak decays of doubly heavy baryons Ξcc++\Xi_{cc}^{++}, Ξcc+\Xi_{cc}^{+}, Ωcc+\Omega_{cc}^{+}, Ξbc()+\Xi_{bc}^{(\prime)+}, Ξbc()0\Xi_{bc}^{(\prime)0}, Ωbc()0\Omega_{bc}^{(\prime)0}, Ξbb0\Xi_{bb}^{0}, Ξbb\Xi_{bb}^{-} and Ωbb\Omega_{bb}^{-} and focus on the decays into spin 1/21/2 baryons in this paper. At the quark level these decay processes are induced by the cd/sc\to d/s or bu/cb\to u/c transitions, and the two spectator quarks can be viewed as a scalar or axial vector diquark. We first derive the hadronic form factors for these transitions in the light-front approach and then apply them to predict the partial widths for the semi-leptonic and non-leptonic decays of doubly heavy baryons. We find that a number of decay channels are sizable and can be examined in future measurements at experimental facilities like LHC, Belle II and CEPC.Comment: 40 pages, 4 figures, to appear in EPJ

    Universal Time Scale for Thermalization in Two-dimensional Systems

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    The Fermi-Pasta-Ulam-Tsingou problem, i.e., the problem of energy equipartition among normal modes in a weakly nonlinear lattice, is here studied in two types of two-dimensional (2D) lattices, more precisely in lattices with square cell and triangular cell. We apply the wave-turbulence approach to describe the dynamics and find multi-wave resonances play a major role in the transfer of energy among the normal modes. We show that, in general, the thermalization time in 2D systems is inversely proportional to the squared perturbation strength in the thermodynamic limit. Numerical simulations confirm that the results are consistent with the theoretical prediction no matter systems are translation-invariant or not. It leads to the conclusion that such systems can always be thermalized by arbitrarily weak many-body interactions. Moreover, the validity for disordered lattices implies that the localized states are unstable.Comment: 6 pages, 4 figure
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