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Controllable coupling between a nanomechanical resonator and a coplanar-waveguide resonator via a superconducting flux qubit

机译:纳米机械谐振器和共面波导谐振器之间通过超导通量量子位的可控耦合

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摘要

We study a tripartite quantum system consisting of a coplanar-waveguide (CPW) resonator and a nanomechanical resonator (NAMR) connected by a flux qubit, where the flux qubit has a large detuning from both resonators. By a unitary transformation and a second-order approximation, we obtain a strong and controllable (i.e., magnetic-field-dependent) effective coupling between the NAMR and the CPW resonator. Due to the strong coupling, vacuum Rabi splitting can be observed from the voltage-fluctuation spectrum of the CPW resonator. We further study the properties of single-photon transport as inferred from the reflectance or equivalently the transmittance. We show that the reflectance and the corresponding phase-shift spectra both exhibit doublet of narrow spectral features due to vacuum Rabi splitting. By tuning the external magnetic field, the reflectance and the phase shift can be varied from 0 to 1 and -pi to pi, respectively. The results indicate that this hybrid quantum system can act as a quantum router.
机译:我们研究了一个由共面波导(CPW)谐振器和通过磁通量量子位连接的纳米机械谐振器(NAMR)组成的三方量子系统,其中磁通量量子位与两个谐振器的失谐幅度都很大。通过单位变换和二阶近似,我们在NAMR和CPW谐振器之间获得了强大且可控制的(即取决于磁场的)有效耦合。由于强耦合,可以从CPW谐振器的电压波动频谱中观察到真空Rabi分裂。我们进一步研究了根据反射率或等效透射率推断出的单光子传输特性。我们显示,由于真空拉比分裂,反射率和相应的相移光谱都显示出两倍的窄光谱特征。通过调整外部磁场,反射率和相移可以分别从0变为1,从-pi变为pi。结果表明,该混合量子系统可以充当量子路由器。

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