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Heisenberg-limited single-mode quantum metrology in a superconducting circuit

机译:超导电路中海森堡有限的单模量子计量

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摘要

Two-mode interferometers lay the foundations for quantum metrology. Instead of exploring quantum entanglement in the two-mode interferometers, a single bosonic mode also promises a measurement precision beyond the shot-noise limit (SNL) by taking advantage of the infinite-dimensional Hilbert space of Fock states. Here, we demonstrate a single-mode phase estimation that approaches the Heisenberg limit (HL) unconditionally. Due to the strong dispersive nonlinearity and long coherence time of a microwave cavity, quantum states of the form 0+N2 can be generated, manipulated and detected with high fidelities, leading to an experimental phase estimation precision scaling as ∼N−0.94. A 9.1 dB enhancement of the precision over the SNL at N = 12 is achieved, which is only 1.7 dB away from the HL. Our experimental architecture is hardware efficient and can be combined with quantum error correction techniques to fight against decoherence, and thus promises quantum-enhanced sensing in practical applications.
机译:两模干涉仪为量子计量奠定了基础。单一的玻色模式并没有利用双模干涉仪探索量子纠缠,而是通过利用Fock态的无穷维希尔伯特空间,保证了超过散粒噪声极限(SNL)的测量精度。在这里,我们演示了无条件地接近海森堡极限(HL)的单模相位估计。由于微波腔​​的强分散非线性和长相干时间,量子态的形式为 < mfenced close =“)” open =“(” spacers =“”> 0 + N < / mrow> 2 可以高保真度生成,处理和检测,从而进入实验阶段估计精度缩放为〜N -0.94 。在N = 12时,SNL的精度提高了9.1 dB,与HL的距离仅为1.7 dB。可以与量子纠错技术结合使用以对抗退相干,因此有望在实际应用中实现量子增强的传感。

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