论文标题
可扩展的多光子量子计量学既没有预先选择的测量
Scalable multiphoton quantum metrology with neither pre- nor post-selected measurements
论文作者
论文摘要
电磁场的量子统计波动建立了一个极限,称为shot-noise极限,对使用经典技术进行的光学测量的灵敏度。但是,量子技术不受此射击限制的限制。在这方面,使用量子源产生的每个光子来估计较小的物理参数(超出射击噪声极限)的可能性构成了量子光学元件的主要目标之一。在这里,我们在实验上证明了跨广泛阶段的量子增强光相估计的可扩展协议,既没有预先选择的测量值。这是通过有效设计自发参数下转换源的源,结合了光子划分的检测。两种模式挤压真空状态的鲁棒性使我们能够以N00N状态优于方案,在N00N状态下,单个光子的丢失足以从量子状态中删除所有相位信息。与依赖于N00N状态或条件测量的其他方案相反,我们技术的灵敏度可以通过生成和检测高阶光子对来提高。我们协议的独特功能使其可扩展。我们的工作对于依赖多光子干扰(例如量子成像,玻色子采样和量子网络)的量子技术很重要。
The quantum statistical fluctuations of the electromagnetic field establish a limit, known as the shot-noise limit, on the sensitivity of optical measurements performed with classical technologies. However, quantum technologies are not constrained by this shot-noise limit. In this regard, the possibility of using every photon produced by quantum sources of light to estimate small physical parameters, beyond the shot-noise limit, constitutes one of the main goals of quantum optics. Here we experimentally demonstrate a scalable protocol for quantum-enhanced optical phase estimation across a broad range of phases, with neither pre- nor post-selected measurements. This is achieved through the efficient design of a source of spontaneous parametric down-conversion in combination with photon-number-resolving detection. The robustness of two-mode squeezed vacuum states against loss allows us to outperform schemes based on N00N states, in which the loss of a single photon is enough to remove all phase information from a quantum state. In contrast to other schemes that rely on N00N states or conditional measurements, the sensitivity of our technique could be improved through the generation and detection of high-order photon pairs. This unique feature of our protocol makes it scalable. Our work is important for quantum technologies that rely on multiphoton interference such as quantum imaging, boson sampling and quantum networks.