PaperPanorama

Nuclear Theory·nucl-th

Monday·September 10, 2018

10 papers4 primary·6 cross-listed

  1. 05

    Addressing the Majorana vs. Dirac Question with Neutrino Decays

    A. Baha Balantekin🇺🇸 · André de Gouvêa🇺🇸 · Boris Kayser🇺🇸

    The Majorana versus Dirac nature of neutrinos remains an open question. This is due, in part, to the fact that virtually all the experimentally accessible neutrinos are ultra-relativistic. Noting that Majorana neutrinos can behave quite differently from Dirac ones when they are non-relativistic, we show that, at leading order, the angular distribution of the daughters in the decay of a heavy neutrino into a lighter one and a self-conjugate boson is isotropic in the parent's rest frame if the neutrinos are Majorana, independent of the parent's polarization. If the neutrinos are Dirac fermions, this is, in general, not the case. This result follows from CPT invariance and is independent of the details of the physics responsible for the decay. We explore the feasibility of using these angular distributions -- or, equivalently, the energy distributions of the daughters in the laboratory frame -- in order to address the Majorana versus Dirac nature of neutrinos if a fourth, heavier neutrino mass eigenstate reveals itself in the current or next-generation of high-energy colliders, intense meson facilities, or neutrino beam experiments.

    hep-phhep-exnucl-thPLB(2019)·93 citations
  2. 06

    Conductivities of magnetic quark-gluon plasma at strong coupling

    Wei Li🇨🇳 · Shu Lin🇨🇳 · Jiajie Mei🇨🇳

    In the presence of a strong magnetic field, the quark gluon plasma is magnetized, leading to anisotropic transport coefficients. In this work, we focus on the effect of magnetization on electric conductivity, ignoring the possible contribution from the axial anomaly. We generalize longitudinal and transverse conductivities to finite frequencies. For transverse conductivity, a separation of contribution from fluid velocity is needed. We study the dependence of the conductivities on the magnetic field and frequency using a holographic magnetic brane model. The longitudinal conductivity scales roughly linearly in the magnetic field, while the transverse conductivity is rather insensitive to the magnetic field. Furthermore, we find the conductivities can be significantly enhanced at large frequency. This can possibly extend the lifetime of the magnetic field, which is a key component of the chiral magnetic effect.

    hep-thhep-phnucl-thPRD(2018)·30 citations
  3. 07

    Total hadronic cross sections at high energies in holographic QCD

    Akira Watanabe🇨🇳 · Mei Huang🇨🇳

    We present our analysis on high energy hadron-hadron scattering in the framework of the holographic QCD. Combining the Brower-Polchinski-Strassler-Tan Pomeron exchange kernel and gravitational form factors of the involved hadrons which are obtained by using the bottom-up AdS/QCD models in the five-dimensional AdS space, we calculate the total cross sections at high energies. We show that our calculations for the nucleon-nucleon scattering agree with the experimental data including the recent ones taken by the TOTEM collaboration at the LHC. The present framework is applicable to any high energy process, in which the strong interaction can be approximated by the Pomeron exchange. We present the results for the pion-nucleon and pion-pion scattering as examples, which can be obtained without any additional parameter because all the adjustable parameters are fixed via the analysis on the nucleon-nucleon scattering. The resulting total cross section ratios are and , respectively.

    hep-phnucl-thPLB(2019)·19 citations
  4. 08

    Scattering in a Euclidean formulation of relativistic quantum mechanics

    W. N. Polyzou🇺🇸 · Gordon Aiello🇺🇸 · Philip Kopp🇺🇸

    A Euclidean formulation of relativistic quantum mechanics is discussed. Representations of the Hilbert space inner product and Poincaré generators are all expressed in terms of Euclidean space-time variables. The formulation does not require analytic continuation and can be used to directly calculate scattering observables. A toy model is used to demonstrate the feasibility of performing scattering calculations using the suggested computational methods.

    hep-lathep-thnucl-thPoS(2019)·0 citations
  5. 09

    Symmetries and Algebraic Methods in Neutrino Physics

    A.B. Balantekin🇺🇸

    Symmetry properties associated with neutrino propagation with or without a background of other particles, including neutrinos, is reviewed. The utility of symmetries is illustrated with examples chosen from the see-saw mechanism and both matter-enhanced and collective neutrino oscillations. The role of symmetries in neutrino astrophysics is highlighted.

    hep-phastro-ph.SRnucl-thJ.Phys.G(2018)·14 citations
  6. 10

    Scattering with real-time path integrals

    W. N. Polyzou🇫🇷 · Ekaterina Nathanson🇫🇷

    Sharp-momentum transition matrix elements for scattering from a short-range Gaussian potential are computed using a real-time path integral. The computation is based on a numerical implementation of a new interpretation of the path integral as the expectation of a potential functional with respect to a complex probability distribution on cylinder sets of paths. The method is closely related to a unitary transfer matrix computation.

    hep-lathep-thnucl-thSpringer Proc.Phys.(2020)·0 citations

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