论文标题

克服使用挤压状态输入在空腔中形成的猫态的破裂性

Overcoming decoherence of cat-states formed in a cavity using squeezed-state inputs

论文作者

Teh, R. Y., Drummond, P. D., Reid, M. D.

论文摘要

猫态是两个连贯状态的叠加,具有振幅$α_{0} $和$-α_{0} $。最近的实验使用超导电路在微波腔场中创建CAT状态。与在绝热且高度非线性极限的退化参数振荡(DPO)一样,通过泵场的向下转换产生信号光子对,在信号腔模式下以信号腔模式形成状态。信号的阻尼和热波动的存在会迅速分解状态,对动力学的影响是破坏猫状态的可能性,或者急剧减少可以形成的猫态的寿命和大小。在本文中,我们研究了对腔与腔的挤压储层的DPO和微波系统的影响。虽然阈值非线性没有改变,但我们表明挤压状态的使用显着延长了猫状态的寿命。这提高了产生较大幅度且具有更大程度的量子宏观连贯性的猫状态的可行性,这对于许多量子技术应用是必不可少的。使用当前需要修改的哈密顿量的微波设置的实验参数,我们进一步证明了挤压状态如何增强在此制度中可以形成的猫状态的质量。挤压还可以抵抗由于热噪声而引起的显着变质,这与有限温度下的微波磁场有关。通过对热挤压储层进行建模,我们表明,可以通过仔细控制储层的挤压来抑制动力学猫状态的热反应性。为了表示猫状态的质量,我们考虑了包括条纹和消极的不同签名,以及$ c_ {l_ {1}} $量子相干的度量。

A cat-state is a superposition of two coherent states with amplitudes $α_{0}$ and $-α_{0}$. Recent experiments create cat states in a microwave cavity field using superconducting circuits. As with degenerate parametric oscillation (DPO) in an adiabatic and highly nonlinear limit, the states are formed in a signal cavity mode via a two-photon dissipative process induced by the down conversion of a pump field to generate pairs of signal photons. The damping of the signal and the presence of thermal fluctuations rapidly decoheres the state, and the effect on the dynamics is to either destroy the possibility of a cat state, or else to sharply reduce the lifetime and size of the cat-states that can be formed. In this paper, we study the effect on both the DPO and microwave systems of a squeezed reservoir coupled to the cavity. While the threshold nonlinearity is not altered, we show that the use of squeezed states significantly lengthens the lifetime of the cat states. This improves the feasibility of generating cat states of large amplitude and with a greater degree of quantum macroscopic coherence, which is necessary for many quantum technology applications. Using current experimental parameters for the microwave set-up, which requires a modified Hamiltonian, we further demonstrate how squeezed states enhance the quality of the cat states that could be formed in this regime. Squeezing also combats the significant decoherence due to thermal noise, which is relevant for microwave fields at finite temperature. By modeling a thermal squeezed reservoir, we show that the thermal decoherence of the dynamical cat states can be inhibited by a careful control of the squeezing of the reservoir. To signify the quality of the cat state, we consider different signatures including fringes and negativity, and the $C_{l_{1}}$ measure of quantum coherence.

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