论文标题

光多原子分子中的核自旋依赖性差异效应

Nuclear spin-dependent parity-violating effects in light polyatomic molecules

论文作者

Hao, Yongliang, Navrátil, Petr, Norrgard, Eric B., Iliaš, Miroslav, Eliav, Ephraim, Timmermans, Rob G. E., Flambaum, Victor V., Borschevsky, Anastasia

论文摘要

核自旋依赖性平价侵略(NSD-PV)效应的测量为测试核模型和寻找标准模型以外的物理学提供了绝佳的机会。分子具有相反的奇偶校验的紧密间隔状态,可以很容易地调整为退化,从而极大地增强了观察到的奇偶竞争效应。使用光三区分子对NSD-PV效应进行高敏性测量正在制备[E. E. B. Norrgard等,Commun。物理。 2,77(2019)]。重要的是,通过将光核中的这些测量值与较重系统中的先验和正在进行的测量进行比较,从$ z^0 $ -Boson交换电子和核之间对NSD-PV的贡献可以与核anapole矩的贡献分开。此外,光三区分子提供了搜索新粒子的可能性,例如假定的$ z^{\ prime} $ boson。 In this work, we detail a sensitive measurement scheme and present high-accuracy molecular and nuclear calculations needed for interpretation of NSD-PV experiments on triatomic molecules composed of light elements Be, Mg, N, and C. The ab initio nuclear structure calculations, performed within the No-Core Shell Model (NCSM) provide a reliable prediction of the magnitude of different contributions to the NSD-PV effects in the four nuclei.这些结果与标准单粒子模型的预测明显不同,并突出了在此类计算中包含多体效应的重要性。为了从测量结果中提取NSD-PV贡献,依赖于分子结构的奇偶校验交互参数$ w _ {\ text {pv}} $,需要以高精度为单位。我们已经使用相对论耦合群集方法计算了感兴趣的三位角性分子的这些参数。

Measurements of nuclear spin-dependent parity-violating (NSD-PV) effects provide an excellent opportunity to test nuclear models and to search for physics beyond the Standard Model. Molecules possess closely-spaced states with opposite parity which may be easily tuned to degeneracy to greatly enhance the observed parity-violating effects. A high-sensitivity measurement of NSD-PV effects using light triatomic molecules is in preparation [E. B. Norrgard, et al., Commun. Phys. 2, 77 (2019)]. Importantly, by comparing these measurements in light nuclei with prior and ongoing measurements in heavier systems, the contribution to NSD-PV from $Z^0$-boson exchange between the electrons and the nuclei may be separated from the contribution of the nuclear anapole moment. Furthermore, light triatomic molecules offer the possibility to search for new particles, such as the postulated $Z^{\prime}$ boson. In this work, we detail a sensitive measurement scheme and present high-accuracy molecular and nuclear calculations needed for interpretation of NSD-PV experiments on triatomic molecules composed of light elements Be, Mg, N, and C. The ab initio nuclear structure calculations, performed within the No-Core Shell Model (NCSM) provide a reliable prediction of the magnitude of different contributions to the NSD-PV effects in the four nuclei. These results differ significantly from the predictions of the standard single-particle model and highlight the importance of including many-body effects in such calculations. In order to extract the NSD-PV contributions from measurements, a parity-violating interaction parameter $W_{\text{PV}}$, which depends on molecular structure, needs to be known with high accuracy. We have calculated these parameters for the triatomic molecules of interest using the relativistic coupled-cluster approach.

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