Optimal quantum metrology of two-photon absorption

IF 5.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Athena Karsa, Ranjith Nair, Andy Chia, Kwang-Geol Lee and Changhyoup Lee
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Abstract

Two-photon absorption (TPA) is a nonlinear optical process with wide-ranging applications from spectroscopy to super-resolution imaging. Despite this, the precise measurement and characterisation of TPA parameters are challenging due to their inherently weak nature. We study the potential of single-mode quantum light to enhance TPA parameter estimation through the quantum Fisher information (QFI). Discrete variable quantum states (defined to be a finite superposition of Fock states) are optimised to maximise the QFI for given absorption, revealing a quantum advantage compared to both the coherent state (classical) benchmark and the single-mode squeezed vacuum state. For fixed average energy , the Fock state is shown to be optimal for large TPA parameters, while a superposition of vacuum and a particular Fock state is optimal for small absorption for all . This differs from single-photon absorption where the Fock state is always optimal. Notably, photon counting is demonstrated to offer optimal or nearly optimal performance compared to the QFI bound for all levels of TPA parameters for the optimised quantum probes, and their quantum advantage is shown to be robust to single-photon loss. Our findings provide insight into known limiting behaviours of Gaussian probes and their different FI scalings under photon counting ( for squeezed vacuum states versus for coherent states). The squeezed state outperforms coherent states for small TPA parameters but underperforms in the intermediate regime, becoming comparable in the large absorption limit. This can be explained through fundamental differences between behaviours of even and odd number Fock states: the former’s QFI diverges in both large and small absorption limits, while the latter diverges only in the small absorption limit, dominating at intermediate scales.
双光子吸收的最佳量子计量学
双光子吸收(TPA)是一种非线性光学过程,从光谱学到超分辨率成像都有广泛的应用。尽管如此,由于其固有的弱特性,TPA 参数的精确测量和表征仍具有挑战性。我们研究了单模量子光通过量子费雪信息(QFI)增强 TPA 参数估计的潜力。我们对离散可变量子态(定义为 Fock 态的有限叠加)进行了优化,以最大限度地提高给定吸收的 QFI,从而揭示了与相干态(经典)基准和单模挤压真空态相比的量子优势。对于固定的平均能量,Fock 态被证明是大 TPA 参数的最优态,而真空和特定 Fock 态的叠加态则是所有......小吸收的最优态。这与单光子吸收不同,在单光子吸收中,Fock 状态总是最优的。值得注意的是,对于优化的量子探针,与所有 TPA 参数水平的 QFI 约束相比,光子计数被证明具有最佳或接近最佳的性能,而且其量子优势对单光子损耗具有稳健性。我们的研究结果让我们深入了解了高斯探针的已知极限行为及其在光子计数(挤压真空态与相干态)下的不同 FI 扩展。对于较小的 TPA 参数,挤压态的性能优于相干态,但在中间机制下性能较差,在大吸收极限下性能相当。这可以用偶数和奇数 Fock 状态行为的根本差异来解释:前者的 QFI 在大吸收极限和小吸收极限都发散,而后者只在小吸收极限发散,在中间尺度占主导地位。
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来源期刊
Quantum Science and Technology
Quantum Science and Technology Materials Science-Materials Science (miscellaneous)
CiteScore
11.20
自引率
3.00%
发文量
133
期刊介绍: Driven by advances in technology and experimental capability, the last decade has seen the emergence of quantum technology: a new praxis for controlling the quantum world. It is now possible to engineer complex, multi-component systems that merge the once distinct fields of quantum optics and condensed matter physics. Quantum Science and Technology is a new multidisciplinary, electronic-only journal, devoted to publishing research of the highest quality and impact covering theoretical and experimental advances in the fundamental science and application of all quantum-enabled technologies.
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