• Photonics Research
  • Vol. 10, Issue 7, 1640 (2022)
Yuan Zhou1、2, Chang-Sheng Hu2, Dong-Yan Lü1, Xin-Ke Li1, Hai-Ming Huang1, Yong-Chen Xiong1, and Xin-You Lü2、*
Author Affiliations
  • 1School of Mathematics, Physics and Optoelectronic Engineering, Hubei University of Automotive Technology, Shiyan 442002, China
  • 2School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China
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    DOI: 10.1364/PRJ.459794 Cite this Article Set citation alerts
    Yuan Zhou, Chang-Sheng Hu, Dong-Yan Lü, Xin-Ke Li, Hai-Ming Huang, Yong-Chen Xiong, Xin-You Lü. Synergistic enhancement of spin–phonon interaction in a hybrid system[J]. Photonics Research, 2022, 10(7): 1640 Copy Citation Text show less
    Schematic of our hybrid system. (a) Three identical optical cavities with frequency ωc are arranged in a row, and the central cavity couples to the left cavity and the right cavity with the identical coupling strength J, through exchanging photons via optical fibers [68]. Each cavity dispersively couples to the corresponding MR with a coupling strength g0. The additional second-order nonlinear pump is applied to each MR, which can be realized by modulating the spring constant in time. The central mechanical resonator is additionally coupled to the other two bilateral MRs with the same coupling rate Jm. A single NV center is placed inside the central cavity and interacts with this cavity mode with the coupling strength g. (b) Energy-level diagram illustrating the blue and red sideband transitions for the tripartite interaction quantum system.
    Fig. 1. Schematic of our hybrid system. (a) Three identical optical cavities with frequency ωc are arranged in a row, and the central cavity couples to the left cavity and the right cavity with the identical coupling strength J, through exchanging photons via optical fibers [68]. Each cavity dispersively couples to the corresponding MR with a coupling strength g0. The additional second-order nonlinear pump is applied to each MR, which can be realized by modulating the spring constant in time. The central mechanical resonator is additionally coupled to the other two bilateral MRs with the same coupling rate Jm. A single NV center is placed inside the central cavity and interacts with this cavity mode with the coupling strength g. (b) Energy-level diagram illustrating the blue and red sideband transitions for the tripartite interaction quantum system.
    (a) Spin–phonon coupling enhancement Λ/λ and (b) cooperativity enhancement C versus the squeezing parameter r and the photon number ncav of the cavity mode a^0, with g0=0.001g, J=10g, λ/2π=0.1 MHz, g/2π=1 GHz, the effective mechanical dissipation ΓmS/2π∼1 MHz, and the NV spin decay rate γ/2π∼15 MHz.
    Fig. 2. (a) Spin–phonon coupling enhancement Λ/λ and (b) cooperativity enhancement C versus the squeezing parameter r and the photon number ncav of the cavity mode a^0, with g0=0.001g, J=10g, λ/2π=0.1  MHz, g/2π=1  GHz, the effective mechanical dissipation ΓmS/2π1  MHz, and the NV spin decay rate γ/2π15  MHz.
    Dynamical population of the phonon number b^0†b^0 and the spin operator σ^z according to (a), (b) the J-C model and (c), (d) the anti J-C model, with different ncav and r. The parameters are g0=0.001g and J=10g, the effective mechanical dissipation is ΓmS∼0.001g, and the NV spin decay rate is γ∼0.02g. This system is initially prepared in state |ϕ(0)⟩=|1⟩m|0⟩s.
    Fig. 3. Dynamical population of the phonon number b^0b^0 and the spin operator σ^z according to (a), (b) the J-C model and (c), (d) the anti J-C model, with different ncav and r. The parameters are g0=0.001g and J=10g, the effective mechanical dissipation is ΓmS0.001g, and the NV spin decay rate is γ0.02g. This system is initially prepared in state |ϕ(0)=|1m|0s.
    (a), (b) Dynamical population of the spin operator σ^z, number operators of (c), (d) the optical mode a^0†a^0 and (e), (f) the phonon mode b^0†b^0. (a), (c), and (e) correspond to the blue sideband condition, and (b), (d), and (f) correspond to the red sideband condition, with different squeezing parameter r. The parameters are g0∼γ, J=2.8×103γ, and g∼70γ, the effective mechanical dissipation and the cavity decay rate are assumed to be ΓmS∼0.001γ and κ∼0.1γ, and the NV spin decay rate is γ/2π∼15 MHz. This tripartite system is initially prepared, respectively, in states |ψ(0)⟩=|1⟩o|0⟩m|0⟩s (blue sideband) and |ψ(0)⟩=|1⟩o|1⟩m|0⟩s (red sideband).
    Fig. 4. (a), (b) Dynamical population of the spin operator σ^z, number operators of (c), (d) the optical mode a^0a^0 and (e), (f) the phonon mode b^0b^0. (a), (c), and (e) correspond to the blue sideband condition, and (b), (d), and (f) correspond to the red sideband condition, with different squeezing parameter r. The parameters are g0γ, J=2.8×103γ, and g70γ, the effective mechanical dissipation and the cavity decay rate are assumed to be ΓmS0.001γ and κ0.1γ, and the NV spin decay rate is γ/2π15  MHz. This tripartite system is initially prepared, respectively, in states |ψ(0)=|1o|0m|0s (blue sideband) and |ψ(0)=|1o|1m|0s (red sideband).
    Dynamical fidelity of the target entangled GHZ state for four NV spins, in which, the initial state is |ψsystem(0)⟩=|0⟩m|0000⟩s, and the target GHZ state is |ψτNV⟩=[e−iπ/4|0000⟩s+eiπ/4|1111⟩s]/2. The parameters are the squeezing parameter r≃4.0, g0∼0.001g, J∼10g, g/2π∼1.0 GHz, n¯cav∼104, the effective mechanical dissipation ΓmS∼0.001γ, and the NV spin decay rate γ/2π∼15 MHz.
    Fig. 5. Dynamical fidelity of the target entangled GHZ state for four NV spins, in which, the initial state is |ψsystem(0)=|0m|0000s, and the target GHZ state is |ψτNV=[eiπ/4|0000s+eiπ/4|1111s]/2. The parameters are the squeezing parameter r4.0, g00.001g, J10g, g/2π1.0  GHz, n¯cav104, the effective mechanical dissipation ΓmS0.001γ, and the NV spin decay rate γ/2π15  MHz.
    Dynamical population of this mechanical supermode b^0 with the assumption of its initial average phonon number ⟨b^0†b^0⟩≃50, in which the parameters are the squeezing parameter r≃2.0, n¯cav∼100, g0∼0.001g, g∼66γ, J∼10g, the effective mechanical dissipation ΓmS∼0.001γ, and the NV spin decay rate γ/2π∼15 MHz.
    Fig. 6. Dynamical population of this mechanical supermode b^0 with the assumption of its initial average phonon number b^0b^050, in which the parameters are the squeezing parameter r2.0, n¯cav100, g00.001g, g66γ, J10g, the effective mechanical dissipation ΓmS0.001γ, and the NV spin decay rate γ/2π15  MHz.
    Dynamical evolution of the mechanical population of the left local mode ⟨b^LS†b^LS⟩ (green dashed line), the right local mode ⟨b^RS†b^RS⟩ (black solid line), and the supermode ⟨b^0†b^0⟩ (blue solid line) in the time interval [0,2/γ] ([500/γ, 2000/γ] in the inset), assuming both b^RS and b^LS are initially in the single phonon state. Other parameters are the same as in Fig. 6.
    Fig. 7. Dynamical evolution of the mechanical population of the left local mode b^LSb^LS (green dashed line), the right local mode b^RSb^RS (black solid line), and the supermode b^0b^0 (blue solid line) in the time interval [0,2/γ] ([500/γ, 2000/γ] in the inset), assuming both b^RS and b^LS are initially in the single phonon state. Other parameters are the same as in Fig. 6.
    Yuan Zhou, Chang-Sheng Hu, Dong-Yan Lü, Xin-Ke Li, Hai-Ming Huang, Yong-Chen Xiong, Xin-You Lü. Synergistic enhancement of spin–phonon interaction in a hybrid system[J]. Photonics Research, 2022, 10(7): 1640
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