论文标题
p,t-violating eedm in bach $ _3 $和ybch $ _3 $对称顶部分子的分子增强因子
Molecular enhancement factors for P, T-violating eEDM in BaCH$_3$ and YbCH$_3$ symmetric top molecules
论文作者
论文摘要
基本对称性的高精度测试正在寻找奇偶校验 - (p),时间反转 - (t)违反电子偶极矩(EEDM)作为标准模型以外物理的证明。特别是,在多原子分子中,复杂的振动和旋转结构使中等电场中P高,T-ODD效应的高增强可能性。另外,可以使用激光冷却来提高统计灵敏度。在这项工作中,我们计算P,T-ODD电子结构参数$ W_ \ MATHRM {D} $和$ W_ \ MATHRM {S} $用于有前途的候选人Bach $ _3 $和YBCH $ _3 $,以解释未来实验。我们采用了高准确的相对论耦合聚类方法,并系统地评估了计算方法的不确定性。与其他含BA和YB的分子相比,Bach $ _3 $和YBCH $ _3 $展示了更大的$ W_ \ Mathrm {D} $和$ W_ \ Mathrm {S} $与M-C Bond的增加共价性相关的Mathrm {S} $。计算值为$ 3.22 \ pm 0.11 \ times 10^{24} \ frac { $ W_ \ MATHRM {D} $,以及$ 8.42 \ PM0.29 $〜$ H $ kHz和$ 45.35 \ pm1.15 $〜$〜$〜$〜$ h $ kHz for $ w_ \ mathrm {s} $,分别在bach $ _3 $和ybch $ _3 $中。这项工作中报告的强大,准确和具有成本效益的计算方案使我们的结果适合从未来测量值中提取相关的基本特性,还可以用于探索对对基本符号的各种违规行为敏感的其他多原子分子。
High-precision tests of fundamental symmetries are looking for the parity- (P), time-reversal- (T) violating electric dipole moment of the electron (eEDM) as proof of physics beyond the Standard Model. Particularly, in polyatomic molecules, the complex vibrational and rotational structure gives the possibility to reach high enhancement of the P, T-odd effects in moderate electric fields. Additionally, it is possible to increase the statistical sensitivity by using laser cooling. In this work, we calculate the P, T-odd electronic structure parameters $W_\mathrm{d}$ and $W_\mathrm{s}$ for the promising candidates BaCH$_3$ and YbCH$_3$ for the interpretation of future experiments. We employ high-accuracy relativistic coupled cluster methods and systematically evaluate the uncertainties of our computational approach. Compared to other Ba- and Yb-containing molecules, BaCH$_3$ and YbCH$_3$ exhibit larger $W_\mathrm{d}$ and $W_\mathrm{s}$ associated to increased covalent character of the M--C bond. The calculated values are $3.22\pm 0.11 \times 10^{24}\frac{h\text{Hz}}{e\text{cm}}$ and $13.80\pm 0.35 \times 10^{24}\frac{h\text{Hz}}{e\text{cm}}$ for $W_\mathrm{d}$, and $8.42\pm0.29$~$h$kHz and $45.35\pm1.15$~$h$kHz for $W_\mathrm{s}$, in BaCH$_3$ and YbCH$_3$, respectively. The robust, accurate, and cost-effective computational scheme reported in this work makes our results suitable for extracting the relevant fundamental properties from future measurements and also can be used to explore other polyatomic molecules sensitive to various violations of fundamental symmetries.