PaperPanorama

Nuclear Theory·nucl-th

Wednesday·November 25, 2015

6 papers3 primary·3 cross-listed

  1. 01

    Microscopic Theory of Nuclear Fission: A Review

    N. Schunck · L. M. Robledo

    This article reviews how nuclear fission is described within nuclear density functional theory. In spontaneous fission, half-lives are the main observables and quantum tunnelling the essential concept, while in induced fission the focus is on fragment properties and explicitly time-dependent approaches are needed. The cornerstone of the current microscopic theory of fission is the energy density functional formalism. Its basic tenets, including tools such as the HFB theory, effective two-body effective nuclear potentials, finite-temperature extensions and beyond mean-field corrections, are presented succinctly. The EDF approach is often combined with the hypothesis that the time-scale of the large amplitude collective motion driving the system to fission is slow compared to typical time-scales of nucleons inside the nucleus. In practice, this hypothesis of adiabaticity is implemented by introducing (a few) collective variables and mapping out the many-body Schrödinger equation into a collective Schrödinger-like equation for the nuclear wave-packet. Scission configurations indicate where the split occurs. This collective Schrödinger equation depends on an inertia tensor that includes the response of the system to small changes in the collective variables and also plays a special role in the determination of spontaneous fission half-lives. A trademark of the microscopic theory of fission is the tremendous amount of computing needed for practical applications. In particular, the successful implementation of the theories presented in this article requires a very precise numerical resolution of the HFB equations for large values of the collective variables. Finally, a selection of the most recent and representative results obtained for both spontaneous and induced fission is presented with the goal of emphasizing the coherence of the microscopic approaches employed.

    nucl-thRept.Prog.Phys.(2016)·263 citations
  2. 02

    Alpha Decay Width of Po from a quartetting wave function approach

    Chang Xu🇨🇳 · Zhongzhou Ren🇨🇳 · G. Röpke🇩🇪 · P. Schuck🇫🇷 · Y. Funaki🇯🇵 · H. Horiuchi🇯🇵 · A. Tohsaki🇯🇵 · T. Yamada🇯🇵 · Bo Zhou🇯🇵

    A microscopic calculation of -cluster preformation probability and decay width in the typical emitter Po is presented. Results are obtained by improving a recent approach to describe preformation in Po [Phys. Rev. C 90, 034304 (2014)] implementing four-nucleon correlations (quartetting). Using the actually measured density distribution of the Pb core, the calculated alpha decay width of Po agrees fairly well with the measured one.

    nucl-thPRC(2016)·94 citations
  3. 03

    Recent developments in the theory of electromagnetic probes in relativistic heavy-ion collisions

    Chun Shen (McGill U.)🇨🇦

    The theoretical developments in the study of electromagnetic radiation in relativistic heavy-ion collisions are reviewed. The recent progress in the rates for photon and lepton pair production is discussed. Together with the improvements in the hydrodynamic descriptions of the bulk medium, the combined effort is discussed to resolve the "direct photon flow puzzle" in the RHIC and the LHC experiments. Further prediction of the direct photon production in high multiplicity proton-nucleus collisions at the LHC energy can serve as a signature of the quark gluon plasma formation in these small systems. Phenomenological study of dilepton production at finite net baryon density is highlighted at the collision energies available for the RHIC beam energy scan program.

    nucl-thhep-phnucl-exNucl.Part.Phys.Proc.(2016)·14 citations

Affiliations

first authorsco-authorsvia INSPIRE