\begin{document}${{\rm{A}}}^{2}\Pi _{1/2}\leftarrow {{\rm{X}}}^{2}\Sigma _{1/2}$\end{document} transition by the Morse potential method, the closed-form approximation method and the Rydberg-Klein-Rees method separately, and prove that Franck−Condon factor matrix between \begin{document}$ {\mathrm{X}}^{2}\Sigma _{1/2} $\end{document} state and \begin{document}$ {\mathrm{A}}^{2}\Pi _{1/2} $\end{document}state is highly diagonalized, and indicate that sum of f00, f01 and f02 for each molecule is greater than 0.9999 and almost 1 × 104 photons can be scattered to slow the molecules with merely three lasers. The molecular hyperfine structures of \begin{document}$ {X}^{2}\Sigma _{1/2} $\end{document}, as well as the transitions and associated hyperfine branching ratios in the \begin{document}${{\rm{A}}}^{2}\Pi _{1/2}\left(J=1/2, \mathrm{ }+\right)\leftarrow {{\rm{X}}}^{2}\Sigma _{1/2}\left(N=1, \mathrm{ }-\right)$\end{document} transition of CaH, are examined via the effective Hamiltonian approach. According to these results, in order to fully cover the hyperfine manifold originating from \begin{document}$ |X, \mathrm{ }N=1, -\rangle $\end{document}, we propose the sideband modulation scheme that at least two electro-optic modulators (EOMs) should be required for CaH when detuning within 3Γ of the respective hyperfine transition. In the end, we analyze the Zeeman structures and magnetic g factors with and without J mixing of the \begin{document}$ |X, \mathrm{ }N=1, -\rangle $\end{document} state to undercover more information about the magneto-optical trapping. Our work here not only demonstrates the feasibility of laser cooling and trapping of CaH, but also illuminates the studies related to spectral analysis in astrophysics, ultracold molecular collisions and fundamental physics such as exploring the fundamental symmetry violations."> Theoretical investigation into spectrum of <inline-formula><tex-math id="M232">\begin{document}${{{\bf{A}}}}^{{\boldsymbol{2}}}{{\boldsymbol{\Pi}} }_{{\boldsymbol{1/2}}}{\boldsymbol{\leftarrow}} {{{\bf{X}}}}^{{\boldsymbol{2}}}{{\boldsymbol{\Sigma}} }_{{\boldsymbol{1/2}}}$\end{document}</tex-math><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="16-20210522_M232.jpg"/><graphic xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="16-20210522_M232.png"/></alternatives></inline-formula> transition for CaH molecule toward laser cooling - 必威体育下载

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Theoretical investigation into spectrum of ${{{\bf{A}}}}^{{\boldsymbol{2}}}{{\boldsymbol{\Pi}} }_{{\boldsymbol{1/2}}}{\boldsymbol{\leftarrow}} {{{\bf{X}}}}^{{\boldsymbol{2}}}{{\boldsymbol{\Sigma}} }_{{\boldsymbol{1/2}}}$ transition for CaH molecule toward laser cooling

Yin Jun-Hao, Yang Tao, Yin Jian-Ping
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  • Received Date:18 March 2021
  • Accepted Date:12 April 2021
  • Available Online:07 June 2021
  • Published Online:20 August 2021

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