论文标题
通过使用量子纠缠的光子探测激子动力学以光谱选择性
Probing exciton dynamics with spectral selectivity through the use of quantum entangled photons
论文作者
论文摘要
量子光越来越被认为是开发光学测量技术的有希望的资源。通过使用量子纠缠光子之间的非经典相关性,特别注意以增强经典技术的测量精度。量子光学技术的最新进展使操纵纠缠光子的光谱和时间特性成为可能,并且与传统方案相比,光子相关性可以促进使用相对简单的光学系统提取物质信息的提取。在这些方面,纠缠光子在时间分辨光谱上的应用可以打开新的途径,以明确提取复杂分子和材料系统中动态过程的信息。在这里,我们提出了时间分辨光谱法,其中通过利用纠缠光子的非经典相关性来选择性增强特定的信号贡献。纠缠时间是纠缠双胞胎之间的相互延迟,并确定光子相关性的光谱分布。纠缠时间起着双重作用,是控制动力学过程的可访问时间区域和光谱选择性程度的旋钮。从这个意义上讲,纠缠时间的作用基本上等同于经典激光脉冲的时间宽度。结果表明,量子纠缠的光子在时间分辨光谱上的应用通过选择性从拥挤光谱中提取所需的信号贡献来监测复杂分子和材料系统中的动态过程。我们预计,更精心设计的光子状态将扩大量子光谱法的可用性。
Quantum light is increasingly recognized as a promising resource for developing optical measurement techniques. Particular attention has been paid to enhancing the precision of the measurements beyond classical techniques by using nonclassical correlations between quantum entangled photons. Recent advances in quantum optics technology have made it possible to manipulate the spectral and temporal properties of entangled photons, and the photon correlations can facilitate the extraction of matter information with relatively simple optical systems compared to conventional schemes. In these respects, the applications of entangled photons to time-resolved spectroscopy can open new avenues for unambiguously extracting information on dynamical processes in complex molecular and materials systems. Here, we propose time-resolved spectroscopy in which specific signal contributions are selectively enhanced by harnessing the nonclassical correlations of entangled photons. The entanglement time characterizes the mutual delay between an entangled twin and determines the spectral distribution of the photon correlations. The entanglement time plays a dual role as the knob for controlling the accessible time region of dynamical processes and the degrees of spectral selectivity. In this sense, the role of the entanglement time is substantially equivalent to the temporal width of the classical laser pulse. The results demonstrate that the application of quantum entangled photons to time-resolved spectroscopy leads to monitoring dynamical processes in complex molecular and materials systems by selectively extracting desired signal contributions from congested spectra. We anticipate that more elaborately engineered photon states would broaden the availability of quantum light spectroscopy.