\begin{document}$ \left| {\rm{0}} \right\rangle $\end{document}, qubit in the superposition state of \begin{document}$ \left| {\rm{0}} \right\rangle $\end{document} and \begin{document}$ \left| {\rm{1}} \right\rangle $\end{document}, and qubit in the superposition state of \begin{document}$ \left| {\rm{0}} \right\rangle $\end{document}, \begin{document}$ \left| {\rm{1}} \right\rangle $\end{document} and \begin{document}$ \left| {\rm{2}} \right\rangle $\end{document}. Then, the Aulter-Townes splitting (ATS) experiment can be fulfilled in this system. Unlike the method given by Novikov et al. [Novikov S, Robinson J E, Keane Z K, et al. 2013 Phys. Rev. B 88 060503], our method only needs to apply continuous microwave excitation signal to the qubit, and does not need to carry out precise timing test on the qubit, thus reducing the test complexity of observing ATS effect. The ATS effect in resonance and non-resonance regime are observed. In the resonance ATS experiment, in order to obtain the peak value and frequency of resonance peak, Lorentz curve can be used for fitting peaks, and the ATS curve of double peak can be fitted by adding two Lorentz curves together. In the non-resonance ATS experiment, the detection signal is scanned, and the ATS double peak will shift with the different coupling signal detuning, forming an anti-crossing structure. The two curves formed by crossing free structure give two eigenvalues of Hamiltonian. By solving the equation, the experimental results can also be found to be consistent with the theoretical results."> - 必威体育下载

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    Wu Xiao-Yu, Zhao Hu, Li Zhi
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    • Abstract views:4676
    • PDF Downloads:74
    • Cited By:0
    Publishing process
    • Received Date:27 May 2020
    • Accepted Date:16 July 2020
    • Available Online:17 November 2020
    • Published Online:05 December 2020

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