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Loss-tolerant state engineering for quantum-enhanced metrology via the reverse Hong–Ou–Mandel effect

机译:通过逆宏-乌-曼德尔效应实现量子计量的容错状态工程

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摘要

Highly entangled quantum states, shared by remote parties, are vital for quantum communications and metrology. Particularly promising are the N00N states—entangled N-photon wavepackets delocalized between two different locations—which outperform coherent states in measurement sensitivity. However, these states are notoriously vulnerable to losses, making them difficult to both share them between remote locations and recombine in order to exploit interference effects. Here we address this challenge by utilizing the reverse Hong–Ou–Mandel effect to prepare a high-fidelity two-photon N00N state shared between two parties connected by a lossy optical medium. We measure the prepared state by two-mode homodyne tomography, thereby demonstrating that the enhanced phase sensitivity can be exploited without recombining the two parts of the N00N state. Finally, we demonstrate the application of our method to remotely prepare superpositions of coherent states, known as Schrödinger's cat states.
机译:远程方共享的高度纠缠的量子状态对于量子通信和计量至关重要。特别有希望的是N00N状态(在两个不同位置之间散布的纠缠N光子波包)在测量灵敏度方面优于相干状态。然而,众所周知,这些州容易遭受损失,使得它们既难以在偏远地区之间共享它们又难以重组以利用干扰效应。在这里,我们通过利用反向的Hong-Ou-Mandel效应来准备由有损光学介质连接的两方共享的高保真双光子N00N状态来应对这一挑战。我们通过两模零差层析成像测量准备好的状态,从而证明无需结合N00N状态的两个部分就可以利用增强的相敏度。最后,我们演示了该方法在远程准备相干态(称为薛定ding猫态)的叠加中的应用。

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