论文标题
通过缩放到电荷半径,可观察到核电二极管可观察到的强大预测
Robust ab initio prediction of nuclear electric quadrupole observables by scaling to the charge radius
论文作者
论文摘要
如果要与实验面对集体相关性的摘要描述,并且为未知的E2可观察物提供了预测能力,则必须从头开始核理论对电核理论的有意义的预测(E2)可观察到。但是,E2可观察物的融合结果众所周知,在从头算无核配置相互作用(NCCI)方法中获得了挑战。 E2操作员的基质元素对核波函数的大距离尾部敏感,该核能在振荡器基础膨胀中缓慢收敛。类似的融合挑战从头开始预测了核电荷半径。我们证明了E2和半径可观察物的收敛模式密切相关,并且可以通过校准实验知名的地基态半径来对E2可观察物的绝对尺度进行有意义的预测。我们通过为P壳核中的几个E2过渡强度和四极矩提供了鲁棒的从头算预测,如果可以进行实验结果进行比较。
Meaningful predictions for electric quadrupole (E2) observables from ab initio nuclear theory are necessary, if the ab initio description of collective correlations is to be confronted with experiment, as well as to provide predictive power for unknown E2 observables. However, converged results for E2 observables are notoriously challenging to obtain in ab initio no-core configuration interaction (NCCI) approaches. Matrix elements of the E2 operator are sensitive to the large-distance tails of the nuclear wave function, which converge slowly in an oscillator basis expansion. Similar convergence challenges beset ab initio prediction of the nuclear charge radius. We demonstrate that the convergence patterns of the E2 and radius observables are strongly correlated, and that meaningful predictions for the absolute scale of E2 observables may be made by calibrating to the experimentally-known ground-state charge radius. We illustrate by providing robust ab initio predictions for several E2 transition strengths and quadrupole moments in p-shell nuclei, in cases where experimental results are available for comparison.