Testing the constant-temperature approach for the nuclear level density

被引:18
|
作者
Dinh Dang, N. [1 ,2 ]
Quang Hung, N. [3 ]
Quynh Huong, L. T. [3 ,4 ]
机构
[1] RIKEN Nishina Ctr Accelerator Based Sci, Quantum Hadron Phys Lab, 2-1 Hirosawa, Wako, Saitama 3510198, Japan
[2] Inst Nucl Sci & Tech, Hanoi, Vietnam
[3] Duy Tan Univ, Inst Fundamental & Appl Sci, 3 Quang Trung, Da Nang, Vietnam
[4] Viet Nam Natl Univ Ho Chi Minh City Univ Sci, Fac Phys & Engn Phys, Ho Chi Minh City, Vietnam
关键词
STATIC-PATH APPROXIMATION; SHELL-MODEL; FINITE-TEMPERATURE; EXCITED NUCLEI; ENHANCEMENT; MASSES; RATES;
D O I
10.1103/PhysRevC.96.054321
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
The nuclear temperature is calculated from the derivative of the logarithm of the level densities in Ni60-62 and Yb170-172. The latter are obtained within a method, which includes exact pairing for the levels around the Fermi surface in combination with the independent particle model for the rest of the single-particle spectrum. It is found that the increase in this temperature is relatively slow up to the excitation energy E* = E*(f) so that, at 0 < E* <= E*(f), the level density can be described well by the constant-temperature model. The values of E*(f) are found to be 10 MeV for Yb170-172 and 20 MeV for Ni60-62, that is much higher than the particle separation threshold. Within this energy interval, the constant temperature is found to be around 0.5 MeV for Yb170-172, whereas for Ni60-62 it can be any value between 1.3 and 1.5 MeV, in excellent agreement with the recent experimental finding. It is also shown that pairing plays an important role in maintaining this constant temperature at low excitation energy.
引用
收藏
页数:10
相关论文
共 29 条
  • [21] Role of exact pairing in the description of nuclear level density and radiative strength function
    Dang, N. Dinh
    Hung, N. Quang
    Huong, L. T. Quynh
    12TH INTERNATIONAL SPRING SEMINAR ON NUCLEAR PHYSICS: CURRENT PROBLEMS AND PROSPECTS FOR NUCLEAR STRUCTURE, 2018, 966
  • [22] Calculation of microscopic nuclear level densities based on covariant density functional theory
    Geng, Kun-Peng
    Du, Peng-Xiang
    Li, Jian
    Fang, Dong-Liang
    NUCLEAR SCIENCE AND TECHNIQUES, 2023, 34 (10)
  • [23] Understanding nuclear shape phase transitions at the nucleon level with a boson mapping approach
    Hou, Zhan-feng
    Zhang, Yu
    Liu, Yu-xin
    PHYSICS LETTERS B, 2010, 688 (4-5) : 298 - 304
  • [24] Collective enhancement of nuclear level density and its fade-out in 161Dy
    Santhosh, T.
    Rout, P. C.
    Santra, S.
    Pal, A.
    Mohanto, G.
    Gandhi, Ramandeep
    Baishya, A.
    PHYSICAL REVIEW C, 2023, 108 (04)
  • [25] Experimental evidence of large collective enhancement of nuclear level density and its significance in radiative neutron capture
    Santhosh, T.
    Rout, P. C.
    Santra, S.
    Shrivastava, A.
    Mohanto, G.
    Pandit, S. K.
    Pal, A.
    Gandhi, Ramandeep
    Baishya, A.
    Dhuri, Sangeeta
    PHYSICS LETTERS B, 2023, 841
  • [27] Self-consistent mean-field approach to the statistical level density in spherical nuclei
    Kolomietz, V. M.
    Sanzhur, A., I
    Shlomo, S.
    PHYSICAL REVIEW C, 2018, 97 (06)
  • [28] Activity alters how temperature influences intraspecific metabolic scaling: testing the metabolic-level boundaries hypothesis
    Glazier, Douglas Stewart
    JOURNAL OF COMPARATIVE PHYSIOLOGY B-BIOCHEMICAL SYSTEMS AND ENVIRONMENTAL PHYSIOLOGY, 2020, 190 (04): : 445 - 454
  • [29] Nuclear level density of 69Zn from gamma gated particle spectrum and its implication on 68Zn(n, γ)69Zn capture cross section
    Santra, Rajkumar
    Dey, Balaram
    Roy, Subinit
    Laskar, Md S. R.
    Palit, R.
    Pai, H.
    Rajbanshi, S.
    Ali, Sajad
    Bhattacharjee, Saikat
    Babra, F. S.
    Mukherjee, Anjali
    Jadhav, S.
    Naidu, Balaji S.
    Vazhappilly, Abraham T.
    Pal, Sanjoy
    PHYSICS LETTERS B, 2020, 806