122 resultados para Signature


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High-spin states in Pt-187 have been studied experimentally using the Yb-173(O-18, 4n) reaction at beam energies of 78 and 85 MeV. The previously known bands based on the nu i(13/2),nu 7/2(-)[503], and nu i(13/2)(2)nu j configurations have been extended to high-spin states, and new rotational bands associated with the nu 3/2(-)[512] and nu 1/2(-)[521] Nilsson orbits have been identified. The total Routhian surface calculations indicate that the transitional nucleus Pt-187 is very soft with respect to beta and gamma deformations. The band properties, such as level spacings, band crossing frequencies, alignment gains, and signature splittings, have been compared with the systematics observed in neighboring nuclei and have been interpreted within the framework of the cranked shell model. The rotational bands show different band crossing frequencies, which can be explained by the alignment either of i(13/2) neutrons or of h(9/2) protons. Importantly, evidence is presented for a pi h(9/2) alignment at very low frequency in the nu 7/2(-)[503] band. The proton nature of the band crossing is strongly suggested by comparing the measured B(M1;I -> I-1)/B(E2;I -> I-2) ratios with the theoretical values from the semiclassical Donau and Frauendof approach.

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The high-spin states in Pt-187 have been studied experimentally by means of in-beam gamma-ray spectroscopy techniques via the Yb-173(O-18, 4n) fusion-evaporation reaction. The high-spin level scheme of Pt-187 has been established, including three rotational bands. Based on the systematics of level structure in neighboring nuclei and by comparing the experimental and theoretical B(M1)/B(E2) ratios, configurations of 11/2+ [615], 7/2(-)[5031 and 1/2(-)[521] have been proposed for the three rotational bands, respectively. Band properties of band crossing frequency, alignment gain and signature splitting have been discussed.

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Excited states in Tl-188 have been studied experimentally using the Gd-157(Cl-35;4n) reaction at a beam energy of 170 MeV. A rotational band built on the pi h(9/2) x nu i(13/2) configuration with oblate deformation has been established for Tl-188. Based on the structure systematics of the oblate pi h(9/2) x nu i(13/2) bands in the heavier odd-odd Tl nuclei, we have tentatively proposed spin values for the new band in Tl-188. The pi h(9/2) x nu i(13/2) oblate band in Tl-188 shows low-spin signature inversion, and it can be interpreted qualitatively by the two-quasiparticle plus rotor model including a J-dependent p-n residual interaction.

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High spin states in Tl-188 have been investigated via the Gd-157(Cl-35,4n) reaction at beam energy of 170 MeV. A rotational band built on the pi h(9/2) circle times nu(13/2) configuration with oblate deformation has been established. Considering the similarity between the band structure observed in odd-odd Tl nuclei, spin values have been tentatively proposed for the new band in Tl-188. The pi h(9/2) circle times nu(13/2) oblate band in Tl-188 shows low-spin signature inversion, and it can be interpreted qualitatively by the two quasiparticle plus rotor model including a J-dependent p-n residual interaction.

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We study the non-Gaussianity induced by the Sunyaev-Zel'dovich (SZ) effect in cosmic microwave background (CMB) fluctuation maps. If a CMB map is contaminated by the SZ effect of galaxies or galaxy clusters, the CMB maps should have similar non-Gaussian features to the galaxy and cluster fields. Using the WMAP data and 2MASS galaxy catalogue, we show that the non-Gaussianity of the 2MASS galaxies is imprinted on WMAP maps. The signature of non-Gaussianity can be seen with the fourth-order cross-correlation between the wavelet variables of the WMAP maps and 2MASS clusters. The intensity of the fourth-order non-Gaussian features is found to be consistent with the contamination of the SZ effect of 2MASS galaxies. We also show that this non-Gaussianity can not be seen by the high-order autocorrelation of the WMAP. This is because the SZ signals in the autocorrelations of the WMAP data generally are weaker than the WMAP-2MASS cross-correlations by a factor f(2), which is the ratio between the powers of the SZ-effect map and the CMB fluctuations on the scale considered. Therefore, the ratio of high-order autocorrelations of CMB maps to cross-correlations of the CMB maps and galaxy field would be effective to constrain the powers of the SZ effect on various scales.

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The high-spin level structure of Au-188 has been investigated via the Yb-173(F-19,4n gamma) reaction at beam energies of 86 and 90 MeV. The previously reported level scheme has been modified and extended significantly. A new I-pi = 20(+) state associated with pi h(11/2)(-1) circle times nu i(13/2)(-2)h(9/2)(-1) configuration and two new rotational bands, one of which is built on the pi h(9/2) circle times nu i(13/2) configuration, have been identified. The prolate-to-oblate shape transition through triaxial shape has been proposed to occur around Au-188 for the pi h(9/2) circle times nu i(13/2) bands in odd-odd Au isotopes. Evidence for pi h(11/2)(-1) circle times nu i(13/2)(-1) structure of nonaxial shape with gamma < -70 degrees has been obtained by comparison with total Routhian surface and cranked-shell-model calculations.

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We present the results of an elliptic flow, v(2), analysis of Cu + Cu collisions recorded with the solenoidal tracker detector (STAR) at the BNL Relativistic Heavy Ion Collider at root s(NN) = 62.4 and 200 GeV. Elliptic flow as a function of transverse momentum, v(2)(p(T)), is reported for different collision centralities for charged hadrons h(+/-) and strangeness-ontaining hadrons K-S(0), Lambda, Xi, and phi in the midrapidity region vertical bar eta vertical bar < 1.0. Significant reduction in systematic uncertainty of the measurement due to nonflow effects has been achieved by correlating particles at midrapidity, vertical bar eta vertical bar < 1.0, with those at forward rapidity, 2.5 < vertical bar eta vertical bar < 4.0. We also present azimuthal correlations in p + p collisions at root s = 200 GeV to help in estimating nonflow effects. To study the system-size dependence of elliptic flow, we present a detailed comparison with previously published results from Au + Au collisions at root s(NN) = 200 GeV. We observe that v(2)(p(T)) of strange hadrons has similar scaling properties as were first observed in Au + Au collisions, that is, (i) at low transverse momenta, p(T) < 2 GeV/c, v(2) scales with transverse kinetic energy, m(T) - m, and (ii) at intermediate p(T), 2 < p(T) < 4 GeV/c, it scales with the number of constituent quarks, n(q.) We have found that ideal hydrodynamic calculations fail to reproduce the centrality dependence of v(2)(p(T)) for K-S(0) and Lambda. Eccentricity scaled v(2) values, v(2)/epsilon, are larger in more central collisions, suggesting stronger collective flow develops in more central collisions. The comparison with Au + Au collisions, which go further in density, shows that v(2)/epsilon depends on the system size, that is, the number of participants N-part. This indicates that the ideal hydrodynamic limit is not reached in Cu + Cu collisions, presumably because the assumption of thermalization is not attained.

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Efforts have been made in our group to study the band structure of odd-odd nuclei in the A similar to 170 mass region. We aimed at providing new data of high-spin states and searching for the low-spin signature inversion in the 2-qp bands built on the pi h(9/2) circle times nu i(13/2) and pi i(13/2)circle times nu i(13/2) configurations. In this talk, main results of our work will be summarized, and some systematic features of signature inversion discussed. The spin and parity assignments for the pi i(13/2) circle times nu i(13/2) band in (184)An could be regarded as firm providing a good example for systematic and theoretical investigations.

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The high-spin states of Pm-140 have been investigated through the reaction Te-126(F-19, 5n) at a beam energy of 90 MeV. A previous level scheme based on the 8(-) isomer has been updated with spin up to 23 (h) over bar. A total of 22 new levels and 41 new transitions were identified. Six collective bands were observed. Five of them were expanded or re-constructed, and one of them was newly identified. The systematic signature splitting and inversion of the yrast pi h(11/2)circle times vh(11/2) band in Pr and Pm odd-odd isotopes has been discussed. Based on the systematic comparison, two Delta I = 2 bands were proposed as double-decoupled bands; other two bands with strong Delta I = 1 M1 transitions inside the bands were suggested as oblate bands with gamma similar to -60 degrees; another band with large signature splitting has been proposed with oblate-triaxial deformation with gamma similar to -90 degrees. The characteristics for these bands have been discussed.

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利用能量为42MeV和45MeV的9Be束流轰击160Gd自支撑靶,通过160Gd(9Be,4n)165Er熔合蒸发反应研究了165Er核的高自旋态结构。基于实验测量结果,扩展了基于ν5/2−[523]和ν5/2+[642]准粒子组态的转动带,观测到了连接这两条具有不同宇称的转动带的强电偶极跃迁。利用跃迁分支比,提取了带间电偶极跃迁的约化跃迁概率,并讨论了强电偶极跃迁与八极关联之间的关系。提取了ν5/2−[523]和ν5/2+[642]转动带的顺排角动量和能级能量旋称劈裂值,并进行了简单讨论。 High-spin states of 165Er have been studied using the 160Gd(9Be, 4n)reaction at beam energies of 42 and 45 MeV. The previously known bands based on the ν5/2−[523] and ν5/2+[642] configurations have been extended to high-spin states, and electric-dipole transitions linking these two opposite parity bands were observed. Relatively large B(E1) values have been extracted experimentally from the branching ratios, and were attributed to octupole softness. Alignment and signature splitting in energies in the ν5/2−[523] and ν5/2+[642] bands have been extracted and discussed briefly. 熔合蒸发反应;高自旋态;电偶极跃迁;八极关联

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利用能量为42MeV和45MeV的9Be束流轰击160Gd自支撑靶,通过160Gd(9Be,4n)165Er熔合蒸发反应研究了165Er核的高自旋态结构。基于实验测量结果,扩展了基于ν5/2−[523]和ν5/2+[642]准粒子组态的转动带,观测到了连接这两条具有不同宇称的转动带的强电偶极跃迁。利用跃迁分支比,提取了带间电偶极跃迁的约化跃迁概率,并讨论了强电偶极跃迁与八极关联之间的关系。提取了ν5/2−[523]和ν5/2+[642]转动带的顺排角动量和能级能量旋称劈裂值,并进行了简单讨论。 High-spin states of 165Er have been studied using the 160Gd(9Be, 4n)reaction at beam energies of 42 and 45 MeV. The previously known bands based on the ν5/2−[523] and ν5/2+[642] configurations have been extended to high-spin states, and electric-dipole transitions linking these two opposite parity bands were observed. Relatively large B(E1) values have been extracted experimentally from the branching ratios, and were attributed to octupole softness. Alignment and signature splitting in energies in the ν5/2−[523] and ν5/2+[642] bands have been extracted and discussed briefly. 熔合蒸发反应;高自旋态;电偶极跃迁;八极关联

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奇奇核作为研究准质子和准中子间相互作用的独特侯选核,近年来,人们给予了越来越多的关注。奇奇核高j组态带中观测到的低自旋旋称反转现象(Signature inversion)已成为原子核高自旋态领域中一个十分活跃的研究课题。近十年来,一系列基于二准粒子加转子模型框架的计算结果表明,奇奇核中这两个准粒子之间的相互作用与旋称反转现象的发生密切相关。相对于偶偶核和奇A核,奇奇核的能级结构更复杂一些,实验上对其高自旋态的研究比较困难,这主要体现在实验上所提供的许多奇奇核的能级纲图存在着一定程度的不确定性,例如能级的激发能位置、转动带的组态、自旋和宇称的指定,甚至在纲图结构、级联系列的核素归属等方面都有一些问题。其中,转动带能级自旋的指定直接关系到准粒子能量的劈裂属性(即正常劈裂还是反常劈裂、旋称反转发生在低自旋区还是高自旋区及旋称反转的发生位置等):自旋的奇偶性定错了,会导致本来是反转的旋称劈裂变成不反转的(反之亦然);自旋值定错了△I,会导致旋称反转的位置发生相应的漂移。由于实验上奇奇核转动带能级自旋指定的混乱局面,掩盖了旋称反转现象的客观规律,使得相关理论模型的计算结果得不到及时检验。基于激发能系统学分析方法、以顺排角动量相加性为判据,我们曾对A~160轻稀土区的πhl_(11/2)direct X vi_(13/2)转动带(17个核素)和A~130过渡区的πh_(11/2)direct XVh_(ll/2)转动带(20个核素)进行了系统研究,对其中20个核的自旋数据提出质疑、并提出了相应的修正方案,在此基础上总结了两核区旋称反转现象的系统规律。利用激发能系统学方法指定奇奇核转动带的能级自旋,主要遵循以下三点原则:①自旋奇偶性:根据推转壳模型的描述,当准粒子处于优惠态(Favored)时、较非优惠态(Unfavored)具有更大的顺排角动量。这样,通过对转动带中两signature分支系列的i_x大小的比较,可以辅助推断能级自旋的奇偶性;②顺排角动量相加性:在忽略p-n剩余相互作用条件下,奇奇核中总的顺排角动量近似等于相邻奇A核中相应组态带提取的准粒子顺排角动量之和。这样,利用i_x对自旋值比较敏感的特点,可以推断出能级自旋取值的大致范围;③激发能系统性分析:由于集体转动反映大量核子的集体行为,少数核子的改变不会对这种运动产生明显影响,利用转动惯量的组态相关特性,在一组同位素或同中子素系列链中,对应一定内禀结构的转动带,随着质子数或中子数的均匀递增,能级能量应表现光滑的变化趋势(即不发生突变)。这三个方面基于不同角度、相对独立地指定转动带自旋。其结论的统一、往往可以给出正确的自旋数据。然而,必须指出的是:系统学分析过程是一种经验方法,并不具有严格的理论基础,上述的自旋修正以及总结出的旋称反转规律,必须得到实验核谱学测量的支持。基于这一思想,针对两核区,我们分别选择情况较为阿典型的奇奇核~(158)Ho和~(124)Cs进行了集中的实验测量。本论文的主要研究目标就是要建立两核中晕带与低激发态或基态的联系,找出原纲图中错误自旋指定的原因所在,验证系统学结论的有效性,并用旋称反转的实验规律性对理论模型的系统计算结果进行检验。(一)奇奇核~(158)58Ho高自旋态的实验研究在原子能研究院的HI-13串列加速器上,通过~(152)Sm(~(11)B,5nγ)~(158)Ho融合蒸发反应(束流轰击能E_(lab)=60 MeV)、对目标核~(158)Ho的高自旋态进行布居。探测阵列由八个高纯锗探测器构成,为了提高低能射线的收集效率,使用了一个平面型高纯锗探测器。分别进行了激发函数曲线测量、γ-γ-t符合测量和剩余放射性测量。数据反演后,两重符合总记数~120x10~6。实验结果概括如下:1.建立了基态带,组态指定为:{πh_(11/2)[523]7/2-direct Xvh_(9/2)[521]3/2~-}K~π=5~+;2.建立了一个强度仅次于晕带的强耦合带结构(亚晕带:yrare band)。通过转动参数、跃迁几率、顺排角动量、带交叉频率等特征参量的分析,其组态指定为:{πg_(7/2)[404】7/2]~+ direct X vi_(3/2)[651]3/2~+}K~π=5~+。 尽管该带带头附近的结构还不完整,但观测到了带内几条能级退激、分别贯入到晕带和基态带,从而将晕带和亚晕带同基态联系起来,固定了晕带和亚晕带中能级的激发能位置,并通过对这些连接跃迁多极性的分析,指定了两个带中的能级自旋和宇称;3.晕带(πh_(11/2)direct X vi~(13/2))向高自旋端拓展了7条能级,最高自旋态达到26h,激发 能4.9MeV。肯定了原纲图中不确定的617kev跃迁的存在和放置,观测到了反转点(I_(inv.)≈16h),肯定了系统学研究对该核的自旋修正。基于本实验建立的连接关系,晕带中观测到的最低态(即70.8kev跃迁贯入能级)激发能为207.6kev,而对应该能级,原纲图中激发能为156.9kev。这意味着原能级纲图中,晕带向基态退激途径中漏掉了一个~5lkeV的"能隙"(Energy gap),自旋差|△I|=3。根据晕带与退激5-同质异能态的跃迁(156.9kev)的快符合关系,该"能隙"至少由两个跃迁构成。该结果否定了原纲图中对晕带带头处理的三种可能性(①70.8kev为连接跃迁,其退激的能级为带头;②70.8kev为带内跃迁,156.9kev、5-同质异能态为带头:⑨70.8kev为带内跃迁,156.9kev、5-同质异能态为带头,但带头附近仍存在尚未观测的跃迁)。不确切的连接关系是过去实验中无法正确指定晕带自旋的原因;4.建立了一个强耦合的转动带结构,其能级间距(跃迁E_γ)随角动量的增加均匀递增,组态指定为{πh_(11/2)[523]7/2~-direct Xvh_(11/2)[505]11/2~-}K~π=9~+;同时,观测到了另一高K激发态退激到该转动带。其内禀结构指定为:{πg_(7/2)[404]7/2~+direct Xvh_(11/2)[505]1 l/2~-}K~π=9~-;5.建立了基于156.9 kev(I~π=5~-、T_(1/2)=29 ns)同质异能态上的转动带,该带观测完整,具有较强耦合的结构特点。其内禀准粒子轨道指定为:{πh_(11/2)[523]_(7/2)~-direct X vd_(3/2)[402]3/2~+}K~π=5~-,与处于较低激发能(67.3 kev)的2~-态(T_(1/2)=27 min.)构成了一对GM伙伴态。否定了过去的实验中把该态指定为{πg_(7/2)~2+direct Xvh_(9/2)[521]3/2~-}K~π=2~-组态;6.观测到了一个基于65.5 kev激发态的转动带,通过理论模型预言的带头激发能及转动参数与实验值的比较、考虑到其较弱的布居强度和很低的顺排角动量、以及较强耦合的结构特点, 其组态指定为: {πd~(5/2)[402]5/2~direct X vh_(9/2)[521]3/2~-}K~π=4~-。这一结果肯定了过去放射性测量中对处于较高激发能(139.2 kev)、T_(1/2)=1.85 ns、I~π=1~-激发态的讨论,即二者构成了一对GM伙伴态;7.建立了基于{πh_(11/2)[523]7/2~-direct X v_(7/2)[523]5/2~-}K~π=6~+激发态的强耦合转动带结构,其带头激发能为450.1 kev,与I~π=1~+、激发能为146.9 kev的同质异能态构成了一对GM伙伴态;8.在过去的放射性衰变测量中,提供了三个2~+激发态(激发能分别为117.7 kev、74.95 kev和316 kev)。其中两个2~+态(117.7和74.95 kev)同时指定具有{πh_(11/2)[523↑]7/2~-direct X vh_(9/2)[521↓]3/2~-}K~π=2~+组态。这里,我们指定1 17.7 kev的2~+激发态为{πg_(7/2)[404↓]7/2~+ direct X vi_(l3/2)[651↓]3/2~+}K~π=2+组态,即与本实验建立的亚晕带内禀激发态构成了一对GM伙伴态,而74.95 kev的2~+激发态指定为 {πh_(11/2)[523↑]7/2~-direct X vh_(9/2)[521↓]3/2~-}K~π=2~+组态,即与基态构成了一对GM伙伴态。基于本实验中K~π=9~+激发态的观测及其转动带的建立,我们指定激发能为3 1 6 kev的2~+激发态具有{πh_(11/2)[523↓]7/2~-direct X vh_(11/2)[505个]1 1/2~-}K~π=2~+组态,即这两个态构成了一对GM伙伴态;9.通过本实验、提供了~(158)Ho中各能态的跃迁强度和跃迁几率等数据。概括起来,奇奇核~(158)Ho的能级纲图大大完善了。综合本实验观测到的高自旋转动带结构和放射性测量中的部分激发态信息,我们可以整理出10对GM伙伴态,并提供了四个分别对应自旋平行和反平行耦合的GM能量漂移(GM Shift),即:{πh_(ll/2)[523]7/2~-direct Xvh_(9/2)[521]3/2~-}K~π=5~+、2~+,EGM=101.4 kev;{πh_(11/2)[523] 7/2~-direct X vd_(3/2)[402]3/2~+}K~π=5~-、2~-,E_(GM)=64.1 kev;{πd_(5/2)[402]5/2~+direct X vh_(9/2)[521]3/2~-}K~π =4~-、1~-,E_(GM)=113.3 kev;{πh_(11/2)[523]7/2~-direct Xvf_(7/2)[523]5/2~-}K~π=6~+、1~+,EGM=255.7 keV。(二)奇奇核~(124)Cs高自旋态的实验研究在原子能院的HI-13串列加速器上,利用~(116)Sn(~(11)B,3nγ)~(124)Cs融合蒸发反应(束流轰击能E_(lab.)=45 MeV),对奇奇核~(124)Cs的高自旋态进行了布居。探测阵列由10个高纯锗探测器和一个小平面探测器组成。数据反演后,总的两重符合事件数达到160x10~6。实验结果概括如下:1.高自旋转动带的信息更丰富了:建立了三个新的转动带结构,其中两个耦合带、一个退耦带,组态分别为:{πh_(11/2)[550]1/2~- direct X vhd_(5/2)[413]5/2~+}K~π=3~-、{πg_(7/2)[413]5/2~+direct X vg_(7/2)[402】5/2~+}K~π=5~+以及{πh_(11/2)[550]1/2~- direct X vd_(3/2)[400]l/2~+}K~π=1~-;2.低激发态的信息更丰富了:观测到了20多条新的低激发态跃迁,增加了10多个新的低激发态;3.转动带之间以及转动带与低激发态间耦合的信息大大丰富了:在过去的研究中观测到了三个彼此孤立、悬空的转动带结构,这里指定它们的组态为:{πh_(11/2) [550]1/2~-direct X vh_(11/2)[523]7/2~-}K~π=4~+(晕 带) ; {πh_(11/2)[550]1/2~- (direct X)vg_(7/2)[402]5/2~+}K~π=3~-(亚晕带:布居强度仅次于晕带);{πh_(11/2)[550]1/2~-(direct X)vs_(1/2)[411]1/2~+}K~π=1~-(双退耦结构)。其中,亚晕带(yrare band)通过至少三个独立的退激路径与低激发态联系起来;同时,建立了晕带与亚晕带间的多条连接关系。其它转动带分别与晕带和亚晕带联系起来,从而,在奇奇核~(124)Cs中,转动带的"悬空"不再存在,限定了各转动带中能级的激发能位援,并通过这些连接跃迁多极性的分析,分别指定了各能态的自旋和宇称。4.基于本实验建立的连接关系,晕带的最低态(124kev射线贯入能级)的激发能为618.9kev,该能量值比过去研究中的同一能级高出11.7kev。这表明原能级纲图中晕带的退激途径漏掉了一个11.7kev的"能隙"(根据Weisskopf估计,该能隙很可能由两个偶极跃迁构成)。该"能隙"的漏观测,正是导致过去实验中无法正确指定晕带自旋的原因所在;

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本论文以A~160区奇奇核的高自旋态核结构为研究对象,详细地总结分析了该区奇奇核[h11/2]p[i13/2]n带的性质,利用在束核谱学实验手段布居和测量了166Ta核高自旋态能级结构、借助模型理论对该核实验结果进行分析,还从理论方面系统地研究了A~160区奇奇核[h11/2]p[i13/2]n带的signature反转现象与形变的关系,取得了一些创新成果。 奇奇核高j组态带的signature反转现象系统地存在于A~160、A~130和A~80核区,目前理论上提出的各种可能机制还不能彻底解释清楚这一现象。本文中较详细地归纳了A~160区奇奇核signature反转带,即[h11/2]p[i13/2]n带,实验数据的一些系统学规律,具体贡献在于 1、总结了晕态[h11/2]p[i13/2]n带的跃迁能量系统学规律,指出存在这种规律的原因在于形变和价核子耦合性质随质子数和中子数增减的有规律变化。 2、展示了随质子数增大和中子数减小该带准粒子顺排角动量相加性逐渐变差的现象,指出这种变差的原因可能是形变减小导致剩余n-p相互作用的增强,以及奇奇核带和与之相比较的奇核带形变差异增大。文中强调了使用顺排角动量相加性规则时要考查相加前后两个signature分支顺排角动量的相对大小。跃迁能量系统学规律和顺排角动量相加性规则是目前指定该区奇奇核[h11/2]p[i13/2]n带核态自旋值的有效工具,上述工作有益于研究新核时正确运用这些工具。文中其它归纳和总结工作也为后续研究提供了较为系统的参考资料。 此前尚未有人对166Ta核做过在束研究,我们在中国原子能科学研究院利用HI-13串列加速器通过141Pr(28Si,3n)反应布居和测量了166Ta核高自旋态。实验中使用了5片厚500μg/cm2纯度98.0%的141Pr自衬靶,7台HpGe反康谱仪和1台平面型HpGe探测器。用改变束流能量测量在束单谱和剩余放射性的方法确认实验中生成了166Ta核并为符合实验选定了束流能量。γ-γ符合实验束流能量为127MeV,实验中共收集到约50×106个两重符合事件。实验后用152Eu放射源对探测系统进行了能量和效率刻度。符合实验数据被反演成γ-γ、X-γ和DCO二维谱。通过处理和分析实验数据,得到以下主要结果: 1、用TaKX射线开窗、比较不同束流能量下的在束单谱和排除已知核射线等方法确认了属于166Ta的射线,根据这些射线的级联关系首次建立起了166Ta核的在束能级纲图,其中包括4条转动带,60条射线。166Ta核的晕带是一条耦合性较强的带,建立起的该带能级纲图中包括16条能级和29条射线,每一signature分支有7条E2拉伸跃迁。另外三条带是两条耦合带和一条双退耦带。其中一条耦合带的耦合性较强、位置较高,可能是4准粒子带。 2、计算γ-γ符合矩阵和DCO矩阵开窗谱中峰下面积,得到了166Ta核55条射线在实验中的相对强度Iγ、29条射线的方向关联系数Iγ(35°)/Iγ(75°)和21个核态退激过程的跃迁强度分支比λ等数据。 3、借助模型计算,为实验中发现的4条转动带指定了组态。晕核组态定为9/2[514]p3/2[651]n, Kπ值为6-。另外两条耦合带的组态被定为9/2[514]p3/2[521]n和9/2[514]p3/2[521]n{3/2[651]n}2,退偶带的组态可能是1/2[514]p3/2[651]n。 4、通过分析跃迁能量系统学规律和运用顺排角动量相加性规则指定了166Ta核晕带核态的自旋值,还使用其它方法倾向性地指定了另外三条带的自旋值。 5、提取了一些核态退激过程B(M1)/B(E2)理论值比实验值偏大,指示该带可能存在负γ形变。另外两条耦合带的B(M1)/B(E2)计算值与实验值比较接近,这方面支持我们对其组态的指定。回弯之前的166Ta核晕带B(M1)/B(E2)值与已知的同位素和同中子素奇奇核晕带值相比大许多,我们认为这是组态和形变变化造成的。 6、166Ta和邻核晕带集体转动惯量随转动角频率平方的变化关系显示准质子占据h11/2子壳顶部轨道时顺排发生得较晚,准中子占据i13/2子壳低部轨道时顺排发生得较早。 7、实验结果显示166Ta核的晕带出现signature反转,signature反转点自旋值和反转点之下M1跃迁摆动幅度都与全区规律相符。 我们研究166Ta核的高自旋态能级结构旨在为研究奇奇核signature反转提供新的实验数据,实验研究达到了预期的目的,实验结果证实了在轻Ta奇奇核同位素中也系统地存在signature反转。 在讨论A~160区奇奇核[h11/2]p[i13/2]n带的signature反转机制方面,作者首次利用现有的TRS计算方法系统地考察了该区32个奇奇核该带形变极其随核子数增减的变化趋势,进而通过CSM计算考察了形变对该带signature劈裂的影响。这方面的研究成果主要包括: 1、计算结果显示,该区核芯较容易在γ形变方向受到价核子的形状极化作用,89≤Z≤95时i13/2准中子一般具有正γ形变驱动作用且随着中子数减小此正γ形变驱动作用逐渐增强,67≤Z≤75时h11/2准质子一般具有负γ形变驱动作用且随着质子数增大此负γ形变驱动作用逐渐增强,Z=63和65时h11/2准质子两个signature组态具有不同方向的γ形变驱动作用,总体看h11/2准质子的γ形变驱动作用没有i13/2准中子的强。 2、只考虑ε2和γ形变参量的TSR计算结果显示A~160区中N=89和91奇奇核的[h11/2]p[i13/2]n带有较大的正γ形变,N≥93奇奇核中该带γ形变则较小或为负γ形变。计算出的不同核该带的γ形变值随中子数增加逐渐减小、随质子数变化的规律较复杂且变化幅度没有随中子数变化时那么明显,Z≤67时一些核两signature的形变还有明显的差异。 3、CSM计算表明正γ形变可以导致费米面附近的h11/2准质子轨道signature反转,并且存在正γ形变时ε2形变、ε4形变、质子对力和质子数的不同都对signature反转幅度和反转点对应的角频率都有影响,[h11/2]p[i13/2]n带两个signature组态形变的不同对费米面附近i13/2准中子轨道的位置也有影响。 4、利用从TRS计算出的形变参量所做CSM计算显示,该区部分奇奇核[h11/2]p[i13/2]n带出现signature反转。计算出的signature反转随中子数或质子数变化趋势有些和实验结果相符,也有一些与实验结果不符,对有些实验上发现signature反转的核还计算不出反转。计算结果预言该区一些没有实验数据的奇奇核[h11/2]p[i13/2]n带中也会存在signature反转,这些核是154Eu、162Ta、164Ta和168Re等。 此前对解释A~160区奇奇核signature反转的系统规律时是否必须考虑γ形变还没有定论,本文工作证实了较明显的正γ形变对signature反转起着重要的作用。但是,单纯考虑γ形变并不能完全再现A~160区奇奇核signature反转规律,今后的研究工作还要系统而细致地考虑各方面因素。

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本论文较广泛地开展了对稀土区奇质子核、奇奇核高自旋态的研究,由相互独立的四部分组成: 一、 弱长椭球形变奇质子核159Lu高自旋态的首次研究: 通过熔合蒸发反应144Sm (19F,4n)E=105MeV建立了该核能级纲图,包括负宇称晕带、八极振动带、正宇称三准粒子带。基于Nilsson单粒子模型、推转壳模型(CSM)、系统学等对各自带的组态和自旋进行了指定。讨论了此区奇质子核负宇称πh11/2带的第一带交叉频率、signature劈裂两方面的系统规律和机制。 二、 中等长椭球形变奇奇核162Lu高自旋态研究: 通过核反应139La(28Si,5n)E=150MeV建立了该核能级纲图。除原已被报道的晕核带外,又建立四条转动带,其中两条为四准粒子带。获得了各γ跃迁强度、B(M1)/B(E2)比值等实验结果。各带组态和自旋的指定基于B(M1)/B(E2)比值实验测量与理论预期结果的比较、CSM计算等。通过再现实验signature劈裂值及signature反转频率值的CSM计算指出在现有CSM框架下无法理解Z=71奇奇核的低自旋signature反转。通过对162Lu电磁性质的分析发现了Z=71奇奇核呈现低自旋而不是高自旋反转的可能实验证据。 三、 强长椭形变奇质子核171Lu和173Ta高自旋态的研究: 通过重离子核反应160Gd(19F,6n2p)首次建立171Lu πh9/2[541]1/2-带的第一带交叉频率。基于再现带头激发能的Nilsson模型计算、再现带交叉频率的CSM计算,阐述了此特定轨道的四极形变和十六极形变驱动性质,主张忽略形变驱动作用而仅通过其它机制来解释此带反常延迟带交叉的作法是不全面的。 从对偶偶核能级结构进行拟合的方法入手,对奇质子核与相邻偶偶核的全同带进行了再次的认定,同时首次考察并大量提供了奇质子核与非相邻偶偶核间的全同带。这些将为揭示全同带的机制以及原子核转动惯量对各种绝定因素的定量依赖关系提供有价值的帮助。 四、 强长椭形变奇奇核174Ta高自旋态的研究: 通过160Gd(19F,5n)E=97MeV核反应把原已建立的四条转动带推至更高自旋,并建立三条新转动带以及双退耦带的非优先序列。获得了各γ跃迁强度、B(M1)/B(E2)比值等实验结果。基于多种考虑对各带组态和自旋进行了指定。提出了一个关于奇奇核双退耦带的经验转动谱公试。阐述和分析了各带带交叉行为。首次以有力的实验证据发现了πh11/2 vi13/2转动带的高自旋signature倒置现象。

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为了改进现有防伪数码相机不能处理通过翻拍伪造数码照片的缺陷,提出了一种新的基于安全芯片的防伪数码相机架构。在拍摄时将所拍摄的区域分成多个小单元,并用对焦测距系统测量各个单元到相机的距离。用安全芯片对图像元数据、图像内容及距离信息进行数字签名,并将签名内容及距离信息都保存在图像文件的元数据里。通过验证数字签名有效且距离信息不完全相等来保证图片的真实可信。该防伪数码相机能同时发现照片在拍摄后被篡改和翻拍问题,所拍摄照片真实可信。