Information Quantum Technology Laboratory, International Cooperation Research Center of China Communication and Sensor Networks for Modern Transportation, School of Information Science and Technology, Southwest Jiaotong University, Chengdu, 610031, China.
Sci Rep. 2023 Mar 16;13(1):4340. doi: 10.1038/s41598-023-30914-3.
Nanomechanical resonators (NMRs), as the quantum mechanical sensing probers, have played the important roles for various high-precision quantum measurements. Differing from the previous emission spectral probes (i.e., the NMR modified the atomic emission), in this paper we propose an alternative approach, i.e., by probing the scattering spectra of the quantum mechanical prober coupled to the driving microwaves, to characterize the physical features of the NMR embedded in a rf-SQUID based superconducting qubit. It is shown that, from the observed specifical frequency points in the spectra, i.e., either the dips or the peaks, the vibrational features (i.e., they are classical vibration or quantum mechanical one) and the physical parameters (typically such as the vibrational frequency and displacements) of the NMR can be determined effectively. The proposal is feasible with the current technique and should be useful to design the desired NMRs for various quantum metrological applications.
纳米机械谐振器(NMR)作为量子力学传感探针,在各种高精度量子测量中发挥了重要作用。与以前的发射光谱探针(即 NMR 改变原子发射)不同,在本文中,我们提出了一种替代方法,即通过探测与驱动微波耦合的量子力学探针的散射光谱,来表征嵌入在基于射频超导量子干涉仪(rf-SQUID)的超导量子比特中的 NMR 的物理特性。结果表明,从光谱中观察到的特定频率点(即凹陷或峰值),可以有效地确定 NMR 的振动特性(即它们是经典振动还是量子力学振动)和物理参数(通常是振动频率和位移等)。该提案在当前技术下是可行的,对于设计各种量子计量应用所需的 NMR 应该是有用的。