首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 31 毫秒
1.
Levels up to 2.3 MeV in 156Gd have been studied using the (n, γ) reaction. Energies and intensities of low-energy γ-rays and electrons emitted after thermal neutron capture have been measured with a curved-crystal spectrometer, Ge(Li) detectors and a magnetic electron spectrometer. High-energy (primary) γ-rays and electrons have been measured with Ge(Li) detectors and a magnetic spectrometer. The high-energy γ-ray spectrum has also been measured in thermal neutron capture in 2 keV resonance neutron capture. The neutron separation energy in 156Gd was measured as Sn = 8535.8 ± 0.5 keV.About 600 transitions were observed of which ~50% could be placed in a level scheme containing more than 50 levels up to 2.3 MeV excitation energy. 42 of these levels were grouped into 15 excited bands. In addition to the β-band at 1050 keV we observe 0+ bands at 1168, 1715 and 1851 keV. Other positive-parity bands are: 1+ bands at 1966, 2027 and 2187 keV; 2+ bands at 1154 (γ-band) and 1828 keV; and 4+ bands at 1511 and 1861 keV. Negative-parity bands are observed at 1243 keV (1?), 1366 keV (0?), 1780 keV (2?) and 2045 keV (4?). Reduced E2 and E0 transition probabilities have been derived for many transitions. The ground band, the β- and γ-bands and the 0+ band at 1168 keV have been included in a phenomenological four-band mixing calculation, which reproduces well the experimental energies and E2 transition probabilities.The lowest three negative-parity (octupole) bands of which the 0? and the 1? bands are very strongly mixed, were included in a Coriolis-coupling analysis, which reproduces well the observed energies. The E1 transition probabilities to the ground band are also well reproduced, while those from the higher-lying 0+ bands to the octupole bands are not reproduced. Absolute and relative transition probabilities have been compared with predictions of the IBA model and the pairingplus-quadrupole model. Both models reproduce well the E2 transitions from the γ-band, while strong disagreements are found for the E2 transitions from the β-band. The IBA model predicts part of the decay features of the higher lying 2+2, 4+1 and 2?1 bands.  相似文献   

2.
A complete set of conventional γ-ray spectroscopic techniques has been applied to investigate the level structure of 156Gd. A total of twenty-five new levels has been established; unambiguous spin assignments could be given for twelve of them on the basis of angular distributions and conversion electron measurements. The proposed level scheme contains 49 levels, which can be ordered in seven rotational bands. The ground-state band was excited up to Jπ = 14+, the β-band up to 10+, the γ-band up to (11+), the second Kπ = 0+ band tentatively up to (10+), the Kπ = 4+ band up to (8+). Two negative-parity bands, one with even spins and one with odd spins, were excited to Jπ = (12?) and (13?). An isomeric state was established with T12 = 1.3 μs, Jπ = 7?, Ex = 2137.7 keV. The properties of the Kπ = 4+ band and the isomeric state can be well explained by two-quasiparticle configurations. The negative-parity bands are interpreted as aligned octupole bands. Positive and negative-parity bands have been calculated in terms of the IBA model. Good agreement with the experimental results is obtained.  相似文献   

3.
The level structure of 184W has been studied from the prompt γ-rays emitted following the capture of both thermal and 2 keV neutrons by 183W. Energies and intensities were measured for both the primary and the secondary (low-energy) prompt γ-rays. From these data, a level scheme is proposed for 184W in which all the Iπ = 0+, 1+ and 2+ states below ≈ 2.0 MeV are observed. Where possible, rotational-band assignments have been made to these and other levels. Additional evidence is presented which confirms the 1130 keV state as being the band head of a Kπ = 2? octupole vibrational band. Admixed Kπ = 0+ and 2+ bands are established at 1322 and 1386 keV, respectively, with the Iπ = 2+ states (at 1431 and 1386 keV) having a mutual admixture of ≈ 12%. In the energy region above 1.5 MeV, the following bands and band-head energies are identified: Kπ = 1+, 1613 keV; Kπ = 0+, 1614 keV; Kπ = 1+, 1713 keV; Kπ = 2+, 1877 keV. The neutron binding energy in 184W has been determined to be 7411.1±0.6 keV. The band structure of the 1613 keV (1+) and 1614 keV (0+) bands is observed to be strongly distorted, the observed A ( h?2/2I) values being ≈ 3.6 keV and ≈ 32 keV, respectively. This strong distortion is shown to be explainable in terms of Coriolis coupling of reasonable strength between the two bands. A similar explanation is shown to account for the somewhat less anomalous A-values (22.8 keV and 14.0 keV, respectively) of the 2+ band at 1386 keV and the 3+ band at 1425 keV. The results of a phenomenological fiveband-mixing analysis involving the Kπ = 0+ and 2+ bands below ≈ 1.5 MeV are presented and discussed. These calculations indicate, among other things, that the direct E2 matrix element connecting the 1322 keV, Kπ = 0+ band and the ground-state band is quite small, possibly zero. They also indicate that a nonzero E2 matrix element exists between this excited Kπ = 0+ band and the γ-vibrational band and that the magnitude of this element is comparable with that between the γ-vibrational and ground-state bands. Arguments favoring and apparently refuting the interpretation of the 1322 keV, 0+ band as a “two-phonon γ-vibration” are presented.  相似文献   

4.
The γ-rays following the β?-decay of 228Fr have been studied by means of γ-ray singles including multi-spectrum analysis and γ-γ coincidence measurements using Ge(Li) spectrometers. Most of the observed γ-transitions could be placed in the level scheme of 228Ra. The accuracy the energy of the first-excited state in 228Ra has been improved and 35 new excited levels have been established, 11 of them grouped into the ground-state band, the low-lying Kπ = 0? band with the head at 474.14 keV and two excited Kπ = 0+ bands with heads at 721.17 and 1041.9 keV. Candidates for two close-lying Kπ = 2+ bands have also been found. It is concluded that the ground state octupole deformation, if any, is less pronounced in 228Ra than in lighter radium isotopes.  相似文献   

5.
A detailed investigation of the energies and intensities of the γ-rays that depopulate the low spin levels of the β- and γ-vibrational bands of156Gd and the γ-vibrational band of158Gd has been conducted. Both singles and γ-γ coincidence measurements were made on sources of 15-d156Eu and 46-min158Eu by use of large volume, high resolution Ge(Li) detectors. In addition to the γ-band at 1154.09 keV, twoK π=0+ bands were observed in156Gd with band heads at 1049.45 and 1168.11 keV, respectively. The 2+ and 3+ members of the γ-vibrational band in158Gd were observed at 1187.12 and 1265.43 keV, respectively, as well as a newK π=0+ band at 1195.98 keV. A first order perturbational treatment of the branching ratios was applied to both nuclei. In addition, the mixing between the ground state, the β-, and the γ-vibrational bands of156Gd is considered from two approaches, but neither satisfactorily explains all the experimentalB(E2) ratios.  相似文献   

6.
The bandhead energies of twenty two-quasiparticle states expected to occur in the low-energy excitation spectrum of the doubly odd nucleus 250Bk are calculated using a zero-range residual interaction and the results are compared with the available experimental information. Configuration assignments to nine intrinsic states reported in earlier studies are confirmed. Our calculations support the excitation energy of 115 keV for the Kπ = 3+ state and also the characterisation of the 317 keV 5+ state as the Kπ = 5+ bandhead. In addition, we suggest acceptable two-particle configurations for the 175 keV 1+ state and the 216 keV 0+ state. The expected location of eight as yet unobserved two-quasiparticle states is predicted.  相似文献   

7.
8.
The decay of 4 min 158Tm has been investigated with on-line mass-separated samples obtained from the Orsay ISOCELE separator. Measurements of γ-rays, conversion electron lines and γ-γ bi-dimensional coincidences were performed. About 180 transitions were ascribed to the decay and two thirds of them were placed in a decay scheme. The β-band and the γ-band were identified with bandheads situated at 806.40 and 820.13 keV respectively. In addition, a number of other vibrational bands (β-γ, β-β, Kπ = 0? and 1?) are proposed. The decay properties of those bands are discussed in the framework of current nuclear models. The log ft values suggest a 2? assignment for 158Tm with the possible configuration (p404J↓-n521↑).  相似文献   

9.
A level scheme of 144Gd has been established using the 144Sm(α, 4nγ) reaction and in-beam spectroscopy methods. Excitation functions, γ-ray angular distributions, γ-γ coincidence spectra, γ-spectra time related to the cyclotron beam bursts and conversion coefficients for the delayed transitions have been measured.The level scheme comprises 11 levels with spins up to I = 12. Two isomers, a 13 ± 2 ns, 7? state at 2471.4 keV and a 145 ± 30 ns, 10+ state at 3433.0 keV have been observed. The former has similar excitation energy as the 7? isomers in 142Sm, 140Nd and 138Ce and it may arise from the d32?1 × νh112?1} configuration although its lifetime seems to indicate some degree of collectivity. The 10+ state has a similar excitation energy as the 10+ isomer found in 138Ce and it may arise from the dominant νh112?2 configuration. Below the 10+ isomer in 144Gd only two excited states have positive parity; the hitherto known first 2+ and 4+ states. The 11+ and 12+ states must include four-particle configurations or they have to be of collective nature. The latter possibility is supported by the considerable E2/M1 mixture (≈ 20 %) observed for the 11+ to 10+ transition. An analysis of the systematics of ground band levels in the N = 80 isotones shows the same gradual behavior between the two VMI solutions previously found for the Te isotopes.  相似文献   

10.
Rotational side-bands in 162Dy have been studied using the 160Gd(α, 2nγ)162Dy reaction. Seven side-bands are observed, with Kπ = 2+, 2?, (0)?, 0+, 5?, 4+ and (6?). Four of these bands have collective structure at low spin: the Kπ = 2+γ-vibrational band, the Kπ = 0+β-vibrational band, and the Kπ = 2? and (0)? octupole vibrational bands. Of the remaining bands, the 4+ band is deformation coupled while the 5? and (6?) bands are rotation-aligned. Several bandcrossings are observed in this nucleus. The β and γ-bands are crossed at I = 6h?and 12h?, respectively, by a highly aligned (i132)2 S-band; extrapolation of this S-band to higher spin suggests that it crosses the g.s.b. between I = 18h?and 20h?. The 2? octupole band is crossed by the 5? band at I = 9h? and again by the (6?) band at I = 12h?. The latter bandcrossings are discussed in terms of two-quasiparticle plus rotor calculations.  相似文献   

11.
Rotational sidebands in 166Er were observed using the 24 MeV 164Dy(α, 2nγ) reactions. The ground-state band was observed up to spin 16+ and does not backbend. A strong backbend is, however, observed in a Kπ = (O+) sideband, indicating that the 12+ state of the previously unknown S-band is at 2656 keV. The γ-band shows significant rotational alignment above I = 10+. Levels of at least two negative-parity bands, one of which is primarily the Kπ = 2? octupole vibration, are also observed.  相似文献   

12.
Levels of 184Os populated in the decay of 3.1 h 184Ir and in the 185Re(p, 2nγ) reaction have been investigated. The measurements included γ-ray singles, β+ ray endpoint, conversion coefficient, β+-γ coincidence and detailed γ-γ coincidence determinations. The results have established an extensive 184Os level scheme, which includes well developed ground state, γ-vibrational and K = 3 octupole bands and which accommodates all the intense transitions observed in both the radioactivity and in-beam γ-ray measurements. Deviations of the level energies in the Kπ = 0+and Kπ = 2+ bands and of the interband reduced transition probabilities from the predictions of the strong-coupling model are discussed in terms of the rotationvibration interaction, and the systematics of the octupole vibrational excitations in even-mass W and Os nuclei are reviewed. It is concluded that the 184Ir ground state configuration has a spin of 5, and that it contains large admixtures of K = 0 or K = 1 character.  相似文献   

13.
Coulomb excitation studies have been performed to measure transition probabilities of collective quadrupole vibrational states in 180Hf. The I = 2 level of the Kπ = 2+ collective γ-band is established at 1200.5 keV with B(E2)exc = (11.0 ± 1.1) × 10?50e2 · cm4 (3.6 ± 0.4 s.p.u.). The angular distribution of the de-exciting γ-rays from this level yields δ = 9.6+22?5.8 or, less likely, 0.7 ± 0.2 for the 1107.2 keV 2γ+ → 2g+ transition. The B(E2)exc for any KπI = 0+2 stateorother 2+ states up to 1500 keV is less than 5 × 10?51e2 · cm4 (< 0.2. s.p.u.).  相似文献   

14.
The decay of 184mRe has been investigated through γ-ray and conversion electron studies. The band head of the Kπ = 2? octupole band has been established at 1130.0 keV. The E2/M1 mixing ratios of three transitions from the γ-vibrational band to the ground state band have been determined by angular correlation measurements. A mixing of El, M2 and E3 multipolarity has been derived for the 921 keV transition combining angular correlation and conversion electron data. A value B(E3, 0+ → 3? = (25 ± 5) × 104e2 · fm6 was obtained from the measured E2/M1 mixing of the 91 keV 3? → → 2? transition and γ-branchings. The data are discussed in terms of the collective model taking into account band mixing.  相似文献   

15.
Five rotational bands in 172Hf have been observed to high spin following the 160Gd(16O, 4n)172Hf reaction, using γ-γ coincidence techniques. The ground-state band is extended to spin 20+ without backbending, in contrast to the neighbouring even-even isotones. The most strongly populated side-band, consisting of separated odd-spin and even-spin sequences, appears to result from the partial decoupling of an i132 neutron. Three other bands are identified with the following band-heads: an 8? state at 2006 keV with 163 ns half-life; a 6+ state at 1685 keV with a half-life < 16 ns; and a level at 1857 keV with spin 4, 5, 6 or 7 and a half-life < 16 ns. The differences between the bands are discussed in terms of the influence of Coriolis forces and the two-quasiparticle level structure.  相似文献   

16.
The decays of 144Pr and 144Pm populate ten excited states in 144Nd. We have carried out detailed γγ angular correlation measurements in order to establish spin assignments for these levels. The measurements were performed with Ge(Li)-Ge(Li) and NaI(Tl)-Ge(Li) systems. Eleven sets of A22 and A44 values were obtained. The Jπ assignments for levels in 144Nd (level energies in keV) are as follows: g.s.,0+; 696, 2+; 1314, 4+ ; 1511, 3?; 1561, 2+ ; 1791, 6+; 2084, 2+ ; 2093, 5?; 2186, 1?; 2204, 4; 2644, 1. Mixing ratios were determined for six γ-transitions.  相似文献   

17.
Levels of 184W populated in the decay of 8.7 h 184Ta have been studied by a variety of experimental techniques. As a result of β and γ-ray energy and intensity determinations and extensive β-γ and γ-γ coincidence measurements, a detailed 184Ta decay scheme accommodating more than 99.5% of the decay intensity has been established. Intense β-ray groups of end-point energies 1165±26 and 1123±26 keV populate levels in 184W at 1699 and 1746 keV, which de-excite predominantly to the 8.3 μs isomeric level at 1285 keV, recently identified as the 12?[510]ν?112+ [615]ν Kπ = 5? band origin. The 1699 keV level also de-excites to members of a 12?[510]ν?72 [503]ν Kπ = 3+ band based at 1425 keV. New information about the properties of the γ-vibrational and K = 2 octupole bands in 184W is presented and the possible configurations of the levels directly populated in the β? decay are discussed. The configuration 72+[404]π ?32? [512]ν Kπ = 5? is indicated for the 184Ta ground state.  相似文献   

18.
We present results on the partial wave analysis of the Kππ system in the mass interval 1.1 to 1.6 GeV/c2, in the reaction K?p→K?π?π+p at 3.95 GeV/c. Our results are compared to those at higher energies, and we note certain differences. In particular, we find very much less of the ?K decay mode of the 1+S 0+ wave. In addition, the relative phase between the 1+S 0+ (K1π) and the 2+D 1+ (K1π) wave has been measured.  相似文献   

19.
The level schemes of 98, 99Ru were studied with the reactions 98Mo(α, 3nγ) and 98Mo(α, 4nγ) at Eα = 35 to 55 MeV, using a large variety of in-beam γ-ray detection techniques and conversion-electron measurements. A search for the 3? state was carried out with the reaction 98Ru(p, p′). The ground-state band of 98Ru was excited up to Jπ = (12)+ and a negative-parity band up to (15)?. New levels in 98Ru were found at Ex = 2285 (Jπ = 4+), 2435 (Jπ = (3?, 4+)), 2671, 3540, 4224, 4847, 4915 (Jπ = (12)+), 4989 (Jπ = (12+)), 5521 (Jπ = (13)?), 5889, 6591 (Jπ = (15)?), and 7621 keV. New unambiguous spin and parity assignments were made for the levels at Ex = 2014 and 3852 keV, as Jπ = 3+ and 9?, respectively. New levels in 99Ru were found at Ex = 1976, 2021 (Jπ = (152+)), 2393, 2401 (Jπ = (172+)), 2875 (π = (+)), 3037, 3201 (Jπ = (232)?), 3460 (J = (172)), 3484 (Jπ = (212+)), 3985, 4224 (Jπ = (272?)), and 5359 keV. The 1070 keV, Jπ = 112? level in 99Ru has a half-life of 2.8 ns. A strongly excited negative-parity band is built on this level. A positive-parity band based on the ground state was excited up to Jπ = (212+). The level schemes are well reproduced by the interacting boson model in the vibrational limit.  相似文献   

20.
From γ-ray linear polarization measurements, γ-ray angular distributions and γ?γ coincidences, the following levels were identified in 48V (EXin keV): 4? at 1099, (5?) at 1685, (6?) at 2397, (7?) at 3171 and (8?) at 3976. This sequence of states is interpreted as a Kπ = 4? rotational band.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号