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Unbiased estimation of an optical loss at the ultimate quantum limit with twin-beams

机译:双光束在最终量子极限处的光损耗的无偏估计

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摘要

Loss measurements are at the base of spectroscopy and imaging, thus permeating all the branches of science, from chemistry and biology to physics and material science. However, quantum mechanics laws set the ultimate limit to the sensitivity, constrained by the probe mean energy. This can be the main source of uncertainty, for example when dealing with delicate systems such as biological samples or photosensitive chemicals. It turns out that ordinary (classical) probe beams, namely with Poissonian photon number distribution, are fundamentally inadequate to measure small losses with the highest sensitivity. It is known that quantum-correlated pair of beams, named “twin-beam state”, allows surpassing this classical limit. Here we demonstrate they can reach the ultimate sensitivity for all energy regimes (even less than one photon per mode) with the simplest measurement strategy. One beam of the pair addresses the sample, while the second one is used as a reference to compensate both for classical drifts and for fluctuation at the most fundamental quantum level. This capability of selfcompensating for unavoidable instability of the sources and detectors allows also to strongly reduce the bias in practical measurement. Moreover, we report the best sensitivity per photon ever achieved in loss estimation experiments.
机译:损耗测量是光谱学和成像技术的基础,因此渗透到科学的所有分支,从化学和生物学到物理学和材料科学。但是,量子力学定律对灵敏度设定了最终极限,受探针平均能量的约束。这可能是不确定性的主要来源,例如在处理诸如生物样品或光敏化学品之类的精密系统时。事实证明,普通的(经典的)探测光束,即具有泊松光子数分布的光束,根本上不足以以最高的灵敏度测量小损耗。众所周知,与量子相关的一对光束称为“双光束状态”,可以超越这一经典极限。在这里,我们证明了采用最简单的测量策略,它们可以在所有能量范围内达到极限灵敏度(每个模式甚至少于一个光子)。该对中的一个光束指向样品,而第二个光束用作参考,以补偿经典漂移和最基本量子水平的波动。这种对信号源和检测器不可避免的不稳定性进行自我补偿的能力还可以大大降低实际测量中的偏差。此外,我们报告了损耗估算实验中曾经达到的每个光子的最佳灵敏度。

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