论文标题
磁场中超导纳米线谐振器的非线性和参数扩增
Nonlinearity and Parametric Amplification of Superconducting Nanowire Resonators in Magnetic Field
论文作者
论文摘要
非线性超导设备通常基于约瑟夫森连接(JJ)非线性,是超导量子电子设备的基础,例如,启用,例如,形成了分离的两级超导码头和放大器。虽然新兴自旋,混合自旋/超导(包括Majorana)和纳米磁通光量子系统可以从超导非线性中受益匪浅,但这些系统中存在强磁场的存在与常规JJ设备不符,这些设备对应用磁场非常敏感。一种潜在的解决方案是使用动力电感(KI)非线性。迄今为止,仅显示线性动力电感(KI)设备可以在高磁场中运行,而在高磁场中的非线性KI设备的操作几乎没有引起注意。在这里,我们研究了超导纳米线(NW)Ki共振器的非线性及其作为平面磁场的参数放大器的性能。我们研究了由10 nm-薄的NBTIN膜制成的NW KI谐振器的KERR系数,其特征性阻抗高达3 k $ω$,并首次在磁场上表现出非排级和退化参数放大的磁场。我们发现,在增益,动态范围和噪声方面,宽度0.1 $ $ m的狭窄Ki谐振器对磁场最高$ \ sim $ 2 t是有力的,而宽度的宽度更宽的Ki共振器1 $ $ $ m m均在2 t低于2 t的领域的范围内遭受了显着抑制。噪音挤压。这些结果为开发非线性量子设备开发了新的途径,该途径在或生成高磁场,例如自旋,混合自旋/超导和磁性机械设备。
Nonlinear superconducting devices, typically based on Josephson Junction (JJ) nonlinearities, are the basis for superconducting quantum electronics, enabling, e.g., the formation of isolated two-level superconducting qubits and amplifiers. While emerging spin, hybrid spin/superconducting (including Majorana), and nano-magneto-optical quantum systems could benefit tremendously from superconducting nonlinearities, the presence of strong magnetic fields in these systems are incompatible with conventional JJ devices, which are highly sensitive to applied magnetic fields. One potential solution is the use of kinetic inductance (KI) nonlinearity. To date, only linear kinetic inductance (KI) devices have been shown to operate in high magnetic fields, while nonlinear KI device operation in high magnetic fields has received virtually no attention. Here, we study the nonlinearity of superconducting nanowire (NW) KI resonators and their performance as parametric amplifiers for in-plane magnetic fields. We study the Kerr coefficients of NW KI resonators made from 10 nm-thin NbTiN films with characteristic impedance up to 3 k$Ω$, and demonstrate both nondegenerate and degenerate parametric amplification, at magnetic fields up to 2 T, for the first time. We find that narrow KI resonators of width 0.1 $μ$m are robust, in terms of gain, dynamic range and noise, to magnetic fields up to $\sim$2 T, while wider KI resonators of width 1 $μ$m suffer significant suppression in the gain around at fields well below 2 T. Around 8 dB deamplification is observed for coherent states for a 0.1 $μ$m KI resonator, implying the capability of noise squeezing. These results open a new pathway to developing nonlinear quantum devices that operate in or generate high magnetic fields such as spin, hybrid spin/superconducting, and magneto-opto-mechanical devices.