Oslo Seminar, Oslo, 6 December, 2012. 1) M. Guttormsen et al., NIM A374 (1996) 371 2) M. Guttormsen et al., NIM A255 (1987) 518 3) A. Schiller et al.,

Slides:



Advertisements
Similar presentations
I0 I Probability Neutron Attenuation (revisited) X Recall t = N t
Advertisements

Neutron-induced Reactions
Neutron Excess Asymmetry Remember HWc 1.
1 Effects of high-order deformation on high-spin structure in the heaviest nuclei accessible by spectroscopy experiments
Systematic study of fusion reactions leading to super-heavy nuclei
Modern Theory of Nuclear Structure, Exotic Excitations and Neutrino-Nucleus Reactions N. Paar Physics Department Faculty of Science University of Zagreb.
European SSAF Crete, Sept. 7-8, 2007 European SSAF Crete, Sept. 7-8, Oslo Cyclotron Laboratory and the Nuclear Physics Program S. Siem Department.
Andrei Afanasev, Hall A Collab. Meeting, 12/5/2005 Operated by the Southeastern Universities Research Association for the U.S. Dept. of Energy Beam Normal.
CALENDAR.
Η photo-production off nucleons Some evidence of D 15 (2080) in the reaction Xian-Hui Zhong Hunan Normal University In collaboration with Qiang Zhao.
EU Market Situation for Eggs and Poultry Management Committee 21 June 2012.
Agency for Healthcare Research and Quality Medical Expenditure Panel Survey (MEPS) Web Analytical Tools.
3/2003 Rev 1 I.2.12 – slide 1 of 18 Part I Review of Fundamentals Module 2Basic Physics and Mathematics Used in Radiation Protection Session 12Statistics.
16 March 2009 EuNPC, Bochum 0 Kaon Photoproduction Results from CLAS D. G. Ireland.
Some (more) Nuclear Structure
When you see… Find the zeros You think….
Unified studies of light neutron-excess systems from bounds to continuum Makoto Ito Department of Pure and Applied Physics, Kansai University I. Introduction.
| Institut für Kernphysik | Project C2 | Inna Pysmenetska | 1 Precision Measurement of the Proton Charge Radius with Elastic Electron Scattering*
Photodissociation as a tool for nuclear astrophysics S. Müller, M. Elvers, J. Endres, M. Fritzsche, J. Hasper, K. Lindenberg, L. Kern, D. Savran, C. Siegel,
Presentation of the PhD thesis “Statistical properties in the quasi- continuum of atomic nuclei” Ann-Cecilie Larsen May 20, 2008 Ann-Cecilie Larsen May.
Gamma-ray strength functions Also called in the literature: radiative strength functions photon strength functions Presentation OCL group meeting Ann-Cecilie.
Dipole Strengths in 112,120 Sn and Systematics of the Pygmy Dipole Resonance at Z=50 Shell Closure BANU ÖZEL 1,2, J. ENDERS 1, Y. KALMYKOV 1, P. von NEUMANN-COSEL.
K. Kaneko Kyushu Sangyo University, Fukuoka, Japan Particle-number conservation for pairing transition in finite systems A. Schiller Michigan State University,
On the formulation of a functional theory for pairing with particle number restoration Guillaume Hupin GANIL, Caen FRANCE Collaborators : M. Bender (CENBG)
The Nuclear Level Densities in Closed Shell Pb Nuclei Syed Naeem Ul Hasan.
Nucleon knockout reactions with heavy nuclei Edward Simpson University of Surrey Brighton PRESPEC Meeting 12 th January 2011.
Alpha decay parent nucleus daughter nucleus Momentum conservation decides how the energy is distributed. r E 30 MeV 5 MeV.
Introduction to stellar reaction rates Nuclear reactions generate energy create new isotopes and elements Notation for stellar rates: p 12 C 13 N  12.
By: Evan A. Killilea Spring Seminar. Outline Nuclear Batteries Initial activity per unit mass Calculated activity in Curies(Ci) for 1 gram of pure Tritium.
Role of mass asymmetry in fusion of super-heavy nuclei
Nuclear Level Densities of Residual Nuclei from evaporation of 64 Cu Moses B. Oginni Ohio University SNP2008 July 9, 2008.
Folding and unfolding NaI spectra Magne Guttormsen Department of Physics and SAFE University of Oslo.
Oslo, May 21-24, Systematics of Level Density Parameters Till von Egidy, Hans-Friedrich Wirth Physik Department, Technische Universität München,
J.N. Wilson, EFNUDAT workshop, CERN, August 2010 Level Densities, Decay Probabilities and Cross sections in the Actinide Region J.N. Wilson Institut de.
T.C. Jude D.I. Glazier, D.P. Watts The University of Edinburgh Strangeness Photoproduction: Polarisation Transfer & Cross-Section Measurements.
Heat Capacities of 56 Fe and 57 Fe Emel Algin Eskisehir Osmangazi University Workshop on Level Density and Gamma Strength in Continuum May 21-24, 2007.
Aim  to compare our model predictions with the measured (Dubna and GSI) evaporation cross sections for the 48 Ca Pb reactions. Calculations.
D.Bucurescu, T. von Egidy, Level density, spin distribution-Ohio, July Nuclear Level Densities and Spin Distributions Dorel Bucurescu National Institute.
The stability of triaxial superdeformed shape in odd-odd Lu isotopes Tu Ya.
Α - capture reactions using the 4π γ-summing technique Α. Lagoyannis Institute of Nuclear Physics, N.C.S.R. “Demokritos”
The structure of giant resonances in calcium and titanium isotopes. N.G.Goncharova, Iu.A.Skorodumina Skobelzyn Institute of Nuclear Physics, Moscow State.
Alex Brown UNEDF Feb Strategies for extracting optimal effective Hamiltonians for CI and Skyrme EDF applications.
Ohio University: A.V. Voinov, S.M. Grimes, C.R.Brune, T. Massey, B.M. Oginni, A.Schiller, Oslo University: M. Guttormsen, A.C. Larsen, S.Siem, N.U.H. Syed.
Исследование запаздывающего деления и сосуществования форм в ядрах таллия, астата и золота (ИРИС, ПИЯФ — ISOLDE, CERN) A. E. Барзах, Ю. M. Волков, В. С.
Gamma-ray strength functions obtained with the Oslo method Ann-Cecilie Larsen July 8, 2008 Workshop on Statistical Nuclear Physics and Applications in.
Kazimierz 2011 T. Cap, M. Kowal, K. Siwek-Wilczyńska, A. Sobiczewski, J. Wilczyński Predictions of the FBD model for the synthesis cross sections of Z.
Level Densities and Gamma Strength Functions from the Fine Structure of Giant Resonances S-DALINAC TU DARMSTADT Spin- and parity-resolved level densities.
Recent improvements in the GSI fission model
Challenges on phase transitions and
N. Itagaki Yukawa Institute for Theoretical Physics, Kyoto University.
What can we learn from nuclear level density? Magne Guttormsen Department of Physics and SAFE University of Oslo.
The concept of compound nuclear reaction: a+B  C  d+F The particle transmission coefficients T are usually known from cross sections of inverse reactions.
July 29-30, 2010, Dresden 1 Forbidden Beta Transitions in Neutrinoless Double Beta Decay Kazuo Muto Department of Physics, Tokyo Institute of Technology.
Some (more) High(ish)-Spin Nuclear Structure Paddy Regan Department of Physics Univesity of Surrey Guildford, UK Lecture 2 Low-energy.
Shape evolution of highly deformed 75 Kr and projected shell model description Yang Yingchun Shanghai Jiao Tong University Shanghai, August 24, 2009.
MICROSCOPIC CALCULATION OF SYMMETRY PROJECTED NUCLEAR LEVEL DENSITIES Kris Van Houcke Ghent University In collaboration with S. Rombouts, K. Heyde, Y.
The 3 MeV pygmy resonance in 163,164 Dy Hilde-Therese Nyhus Department of Physics University of Oslo.
The i 13/2 Proton and j 15/2 Neutron Orbital and the SD Band in A~190 Region Xiao-tao He En-guang Zhao En-guang Zhao Institute of Theoretical Physics,
Gogny-TDHFB calculation of nonlinear vibrations in 44,52 Ti Yukio Hashimoto Graduate school of pure and applied sciences, University of Tsukuba 1.Introduction.
g-ray spectroscopy of the sd-shell hypernuclei
INPC, Firenze, Italy 2-7 June J. Magraf et al., Phys. Rev. C 42, 771 (1990) O. Yevetska et al., Phys. Rev. C 81, (2010) INPC, Firenze, Italy.
Lecture 4 1.The role of orientation angles of the colliding nuclei relative to the beam energy in fusion-fission and quasifission reactions. 2.The effect.
Low-energy enhancement of nuclear  strength and its impact on astrophysical reaction rates Ann-Cecilie Larsen, Post doc, OCL/SAFE, University of Oslo.
超重原子核的结构 孙 扬 上海交通大学 合作者:清华大学 龙桂鲁, F. Al-Khudair 中国原子能研究院 陈永寿,高早春 济南,山东大学, 2008 年 9 月 20 日.
Level Densities and -ray Strength Functions
gamma-transmission coefficients are most uncertain values !!!
Novel technique for constraining r-process (n,γ) reaction rates.
for BCS quasiparticles
Probing correlations by use of two-nucleon removal
Presentation transcript:

Oslo Seminar, Oslo, 6 December, 2012

1) M. Guttormsen et al., NIM A374 (1996) 371 2) M. Guttormsen et al., NIM A255 (1987) 518 3) A. Schiller et al., NIM A447 (2000) 498 Analysis of possible systematic errors of the Oslo method A.C. Larsen et al., Phys. Rev. C 83, (2011) Measure particle-  coincidences Unfold  spectra at each E 1) Apply the first-generation method 2) Ansatz: First-generation matrix P(E, E  )   (E - E  )  T (E  ) 3) Normalization Examples of level density

12 MeV d on 232 Th 24 MeV 3 He on 232 Th 12 MeV d on 232 Th 24 MeV 3 He on 232 Th  3 He –beam  3 He, ,d,t 5”x5” NaI M.Guttormsen, A.Bürger, T.E.Hansen, N.Lietaer, NIM A648(2011)168 ∆E-E Backwards:  = 40 o – 54 o Backwards:  = 40 o – 54 o Oslo Seminar, Oslo, 6 December, 2012

(d,d’) 232 Th (d,p) 233 Th ( 3 He,t) 232 Pa ( 3 He,d) 233 Pa ( 3 He,  ) 231 Th Oslo Seminar, Oslo, 6 December, 2012

(d,p) The  -energy distribution is the same if the decay starts at E after  -emission or starts after the direct reaction into E. E 

Oslo Seminar, Oslo, 6 December, 2012

spin 2-6 ħ ExEx    232 Th(d,p) 233 Th Oslo Seminar, Oslo, 6 December, 2012

P(E x,E  ) Level density Trans. coeff.  (E f ) T(E  )  P(E x,E  ) Oslo Seminar, Oslo, 6 December, 2012

 Brink hypothesis  Fermi’s golden rule

Oslo Seminar, Oslo, 6 December, 2012

Normalization Oslo Seminar, Oslo, 6 December, )A. Gilbert and A.G.W. Cameron, Can. J. Phys. 43, 1446 (1965) 2)T. von Egidy and D. Bucurescu, Phys. Rev. C 72, (2005), Phys. Rev. C 73, (E) (2006) 3)S. Goriely, HF+BCS Demetriou and Goriely, Nucl. Phys. A695 (2001) Sc Average level spacings D from neutron capture:

Oslo Seminar, Oslo, 6 December, 2012

231,232,233 Th and 232,233 Pa Inverse energy-weighted sum rule: K. Heyde, P. von Neumann-Cosel, A. Richter, Rev. Mod. Phys., 82, 2365 (2010) Oslo Seminar, Oslo, 6 December, 2012 M. Guttormsen et al., PRL 109, (2012)

Thermal quasi-particles, the spectators of mid-shell nuclei Oslo Seminar, Oslo, 6 December, 2012

Thermal quasi-particles create level density Oslo Seminar, Oslo, 6 December, 2012 Cooper pair Broken pair 1 level 25 levels

A simple model for level density Oslo Seminar, Oslo, 6 December, Combining all possible proton and neutron configurations - Nilsson single-particle energy scheme - BCS quasi-particles  j

Nilsson level scheme Oslo Seminar, Oslo, 6 December, 2012 Model parameters:  =  = 0.32  = p 1n 1p 3n 1p 5n 1p 7n 3p 1n 3p 3n 3p 5n 5p 1n 5p 3n 7p 1n 20

Level density and broken pairs Oslo Seminar, Oslo, 6 December, 2012 Level densities Number of broken pairs

Parity asymmetry Oslo Seminar, Oslo, 6 December, 2012 U. Agvaanluvsan, G.E. Mitchell, J.F. Shriner Jr., Phys. Rev. C 67, (2003)

Titanium and tin Oslo Seminar, Oslo, 6 December, Ti

Summary Oslo Seminar, Oslo, 6 December, 2012 Simultaneous extraction of level density and  -strength function Examples from A = 40 – 230 Number of thermal quasi-particles determines number of levels Constant temperature level density Fluctuations for lighter even-even nuclei

Oslo Seminar, Oslo, 6 December,