论文标题
量子光的最佳圆二色性传感:多参数估计方法
Optimal circular dichroism sensing with quantum light: Multi-parameter estimation approach
论文作者
论文摘要
圆二色性(CD)的测量已被广泛利用,以区分手性结构的不同对映异构体。它已应用于天然材料(例如分子)以及人造材料(例如纳米光子结构)。但是,尤其是对于手性分子,信号水平非常低,并且增加信号噪声比对于缩短必要的测量时间或降低最小可检测到的分子浓度至关重要。作为解决此问题的一种解决方案,我们在这里建议在CD传感中使用光量子状态,以将使用光相干状态遇到的射击噪声限制以下。通过多参数估计方法,我们确定了CD传感精度的最终量子限制,从而允许包括其他辅助模式在内的一般方案。我们表明,各种最佳方案可以实现最终的量子极限。它不仅包括直接传感配置中的Fock状态输入,还包括Ancilla辅助传感配置中的双束输入,对于这两种光子编号分辨检测都需要作为最佳测量设置。这些最佳方案即使在存在额外的系统损失的情况下,这些最佳方案也会提供显着的量子增强。当实际CD信号很小时,还研究了使用双梁状态的实用方案的最优性,作为一种几乎最佳的CD传感方案。还提出了涉及单光子源和检测器的替代方案。这项工作为手性传感中的量子计量技术进一步研究铺平了道路。
The measurement of circular dichroism (CD) has widely been exploited to distinguish the different enantiomers of chiral structures. It has been applied to natural materials (e.g. molecules) as well as to artificial materials (e.g. nanophotonic structures). However, especially for chiral molecules the signal level is very low and increasing the signal-to-noise ratio is of paramount importance to either shorten the necessary measurement time or to lower the minimum detectable molecule concentration. As one solution to this problem, we propose here to use quantum states of light in CD sensing to reduce the noise below the shot noise limit that is encountered when using coherent states of light. Through a multi-parameter estimation approach, we identify the ultimate quantum limit to precision of CD sensing, allowing for general schemes including additional ancillary modes. We show that the ultimate quantum limit can be achieved by various optimal schemes. It includes not only Fock state input in direct sensing configuration but also twin-beam input in ancilla-assisted sensing configuration, for both of which photon number resolving detection needs to be performed as the optimal measurement setting. These optimal schemes offer a significant quantum enhancement even in the presence of additional system loss. The optimality of a practical scheme using a twin-beam state in direct sensing configuration is also investigated in details as a nearly optimal scheme for CD sensing when the actual CD signal is very small. Alternative schemes involving single-photon sources and detectors are also proposed. This work paves the way for further investigations of quantum metrological techniques in chirality sensing.