论文标题

确定性挤压的schrödinger-cat状态的全光学生成

All-optical generation of deterministic squeezed Schrödinger-cat states

论文作者

Zhang, Zhucheng, Shao, Lei, Lu, Wangjun, Wang, Xiaoguang

论文摘要

量子状态是重要的资源,它们的准备工作是所有量子技术的重要先决条件。但是,由于不可避免的耗散,它们非常脆弱。在这里,提出了基于耗散的确定性挤压schr $ \ ddot {\ mathrm {o}} $ dinger-cat状态的全面生成。我们的系统基于三种光学模式之间的弗雷德金型相互作用,其中一种与连贯的两光子驾驶约束,其余的是连贯的驾驶。我们表明,可以在我们的系统中设计有效的退化三波混合过程,这可能会导致两个光子的同时丢失,从而产生确定性挤压的Schr $ \ ddot {\ mathrm {o}} $ dinger-dinger-dinger-cat状态。更重要的是,通过控制系统中的驾驶场,可以调节两光子损耗,这可以加速挤压的Schr $ \ ddot {\ Mathrm {o}} $ dinger-dinger-cat状态。此外,我们利用挤压的schr $ \ ddot {\ mathrm {o}} $ dinger-cat状态以估计光学干涉仪中的阶段,并证明有关该阶段的量子渔民的信息可以达到Heisenberg限制,以限制大型光子数的极限。同时,它可以比低光子数稳定性的海森堡限制的数量级因子提高,这对于无法承受大型光子通量的脆弱系统非常有价值。这项工作提出了一个全光方案,以确定性地准备挤压的Schr $ \ ddot {\ mathrm {o}} $ dinger-cat状态具有高速,也可以推广到其他物理平台。

Quantum states are important resources and their preparations are essential prerequisites to all quantum technologies. However, they are extremely fragile due to the inevitable dissipations. Here, an all-optical generation of a deterministic squeezed Schr$\ddot{\mathrm{o}}$dinger-cat state based on dissipation is proposed. Our system is based on the Fredkin-type interaction between three optical modes, one of which is subject to coherent two-photon driving and the rest are coherent driving. We show that an effective degenerate three-wave mixing process can be engineered in our system, which can cause the simultaneous loss of two photons, resulting in the generation of a deterministic squeezed Schr$\ddot{\mathrm{o}}$dinger-cat state. More importantly, by controlling the driving fields in our system, the two-photon loss can be adjustable, which can accelerate the generation of squeezed Schr$\ddot{\mathrm{o}}$dinger-cat states. Besides, we exploit the squeezed Schr$\ddot{\mathrm{o}}$dinger-cat states to estimate the phase in the optical interferometer, and show that the quantum Fisher information about the phase can reach the Heisenberg limit in the limit of a large photon number. Meanwhile, it can have an order of magnitude factor improvement over the Heisenberg limit in the low-photon-number regime, which is very valuable for fragile systems that cannot withstand large photon fluxes. This work proposes an all-optical scheme to deterministically prepare the squeezed Schr$\ddot{\mathrm{o}}$dinger-cat state with high speed and can also be generalized to other physical platforms.

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