对半轻子和非轻子 $D^*_{(s)}$ 弱衰变进行实验研究的可能性

Hao Yang, Zhi-Qing Zhang, Peng Li, You-Ya Yang
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Among these decays, the channels\n$D_{s}^{*+}\\to\\eta \\ell^{+}\\nu_{\\ell}$ and $D^{*+}_{s}\\to \\eta\\rho^{+}$ possess\nthe largest branching ratios, which can reach up to $10^{-6}$ order. These\ndecays are most likely to be accessible at the future high-luminosity\nexperiments. One can find that the branching ratios\n$\\mathcal{B}r(D_{s}^{*+}\\to\\eta \\ell^{+}\\nu_{\\ell})=1.46\\times10^{-6}$ and\n$\\mathcal{B}r(D_{s}^{*+}\\to\\eta \\rho^{+})=1.04\\times10^{-6}$ correspond to tens\nof thousands of events in the $e^+e^-$ collider experiments, such as the STCF,\nCEPC and FCC-ee, and tens of millions of events at the HL-LHC. 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引用次数: 0

摘要

与其他重味介子一样,$D^*_{(s)}$介子的弱衰变也可以为检验标准模型(SM)、探索新物理(NP)和理解弱相互作用机制提供一个平台。目前,关于 $D^*_{(s)}$ 介子的理论和实验研究相对有限。除了主要的电磁衰变之外,$D^*_{(s)}$弱衰变也应该是探索$D^*_{(s)}$介子的可行方法。在本文中,我们使用协变光前夸克模型(CLFQM)来研究半轻子衰变 $D^*_{(s)}\toP\ell^{+}\nu_{\ell}$ 和非轻子衰变 $D^*_{(s)}\to PP、PV$,其中$P=\pi, K, \eta^{(\prime)}, V=\rho,K^*,\phi$和$\ell=e,\mu$,它们的范围都在$10^{-13}/sim 10^{-6}$之内。在这些衰变中,$D_{s}^{*+}\to\eta \ell^{+}\nu_{\ell}$ 和$D^{*+}_{s}\to \eta\rho^{+}$ 信道的分支比最大,可达 10^{-6}$ 级。这些衰变最有可能在未来的高亮度实验中出现。我们可以发现,分支比$\mathcal{B}r(D_{s}^{*+}\to\eta \ell^{+}\nu_{\ell})=1.46 (times10^{-6}$)和$\mathcal{B}r(D_{s}^{*+}\to\eta \rho^{+})=1.04(times10^{-6}$对应于在STCF、CEPC和FCC-ee等$e^+e^-$对撞机实验中的数万个事件,以及在HL-LHC中的数千万个事件。总之,在未来的实验中研究$D^*_{(s)}$介子弱衰变是可行的。此外,我们还预测并讨论了另外两个物理观测值,即我们所考虑的衰变的纵向极化分数$f_{L}$和正向-反向不对称度$A_{FB}$。
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Possibility of the experimental study on semi-leptonic and non-leptonic $D^*_{(s)}$ weak decays
Just like other heavy flavor mesons, the weak decays of $D^*_{(s)}$ mesons can also provide a platform to check the Standard Model (SM), explore new physics (NP) and understand the mechanisms of weak interactions. At present, the theoretical and experimental researches on $D^*_{(s)}$ mesons are relatively limited. In addition to the dominant electromagnetic decays, the $D^*_{(s)}$ weak decays should also be feasible to explore the $D^*_{(s)}$ mesons. In this paper, we use the covariant light-front quark model (CLFQM) to study the branching ratios of the semi-leptonic decays $D^*_{(s)}\to P\ell^{+}\nu_{\ell}$ and the non-leptonic decays $D^*_{(s)}\to PP, PV$ with $P=\pi, K, \eta^{(\prime)}, V=\rho, K^*, \phi$ and $\ell=e, \mu$, which are within the range $10^{-13}\sim 10^{-6}$. Among these decays, the channels $D_{s}^{*+}\to\eta \ell^{+}\nu_{\ell}$ and $D^{*+}_{s}\to \eta\rho^{+}$ possess the largest branching ratios, which can reach up to $10^{-6}$ order. These decays are most likely to be accessible at the future high-luminosity experiments. One can find that the branching ratios $\mathcal{B}r(D_{s}^{*+}\to\eta \ell^{+}\nu_{\ell})=1.46\times10^{-6}$ and $\mathcal{B}r(D_{s}^{*+}\to\eta \rho^{+})=1.04\times10^{-6}$ correspond to tens of thousands of events in the $e^+e^-$ collider experiments, such as the STCF, CEPC and FCC-ee, and tens of millions of events at the HL-LHC. In a word, it is feasible to study the $D^*_{(s)}$ meson weak decays in the future experiments. Furthermore, we also predict and discuss another two physical observations, that is, the longitudinal polarization fraction $f_{L}$ and the forward-backward asymmetry $A_{FB}$, for our considered decays.
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