Lv Cui-Juan, Chen Fang-Qi, Sun Yang, Guidry Mike
School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China.
School of Nuclear Science and Technology, Lanzhou University, Lanzhou 730000, China.
Phys Rev Lett. 2022 Jul 22;129(4):042502. doi: 10.1103/PhysRevLett.129.042502.
We report microscopic many-body calculations indicating that rotational bands based on nuclear scissors vibrations exhibit systematic splitting between neighboring spin states (ΔI=2 bifurcation) in which the magnitude of the moment of inertia oscillates between states having even and odd spins. We show that this unexpected result is caused by self-organization of the deformed proton and neutron bodies in the scissors motion, which is further amplified by the K^{π}=1^{+} two-quasiparticle configurations near the scissors states. We propose that the puzzling excited state found above the 1^{+} scissors state in ^{156}Gd [Phys. Rev. Lett. 118, 212502 (2017)PRLTAO0031-900710.1103/PhysRevLett.118.212502] is the first evidence of this effect, and predict that bifurcation may generally appear in all other scissors rotational bands of deformed nuclei, and possibly in other systems exhibiting collective scissors vibrations.
我们报告了微观多体计算结果,表明基于核剪刀振动的转动带在相邻自旋态之间呈现出系统分裂(ΔI = 2 分叉),其中转动惯量的大小在具有偶数和奇数自旋的态之间振荡。我们表明,这一意外结果是由剪刀运动中变形质子和中子体的自组织引起的,并且在剪刀态附近的 K^{π}=1^{+} 两准粒子组态进一步放大了这种自组织。我们提出,在^{156}Gd 中高于 1^{+} 剪刀态发现的令人困惑的激发态[《物理评论快报》118, 212502 (2017)PRLTAO0031 - 900710.1103/PhysRevLett.118.212502]是这种效应的首个证据,并预测分叉可能普遍出现在所有其他变形核的剪刀转动带中,甚至可能出现在其他表现出集体剪刀振动的系统中。