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傅里叶极限单分子发射体的激光诱导频率调谐

Laser-Induced Frequency Tuning of Fourier-Limited Single-Molecule Emitters.

作者信息

Colautti Maja, Piccioli Francesco S, Ristanović Zoran, Lombardi Pietro, Moradi Amin, Adhikari Subhasis, Deperasinska Irena, Kozankiewicz Boleslaw, Orrit Michel, Toninelli Costanza

机构信息

National Institute of Optics (CNR-INO), Via Nello Carrara 1, 50019 Sesto F.no, Italy.

European Laboratory for Non-Linear Spectroscopy (LENS), Via Nello Carrara 1, Sesto F.no 50019, Italy.

出版信息

ACS Nano. 2020 Oct 27;14(10):13584-13592. doi: 10.1021/acsnano.0c05620. Epub 2020 Sep 23.

Abstract

The local interaction of charges and light in organic solids is the basis of distinct and fundamental effects. We here observe, at the single-molecule scale, how a focused laser beam can locally shift by hundreds of times their natural line width and, in a persistent way, the transition frequency of organic chromophores cooled at liquid helium temperature in different host matrices. Supported by quantum chemistry calculations, the results can be interpreted as effects of a photoionization cascade, leading to a stable electric field, which Stark-shifts the molecular electronic levels. The experimental observation is then applied to a common challenge in quantum photonics, .., the independent tuning and synchronization of close-by quantum emitters, which is desirable for multiphoton experiments. Five molecules that are spatially separated by about 50 μm and originally 20 GHz apart are brought into resonance within twice their line width. This tuning method, which does not require additional fabrication steps, is here independently applied to multiple emitters, with an emission line width that is only limited by the spontaneous decay and an inhomogeneous broadening limited to 1 nm. The system hence shows promise for photonic quantum technologies.

摘要

有机固体中电荷与光的局部相互作用是独特且基本效应的基础。我们在此单分子尺度上观察到,聚焦激光束如何能使处于不同主体基质中、在液氦温度下冷却的有机发色团的跃迁频率局部偏移数百倍于其天然线宽,并以持续的方式进行偏移。在量子化学计算的支持下,这些结果可被解释为光电离级联效应,导致产生一个稳定的电场,该电场使分子电子能级发生斯塔克位移。然后,这一实验观察结果被应用于量子光子学中的一个常见挑战,即相邻量子发射体的独立调谐与同步,这对于多光子实验是很有必要的。五个在空间上相隔约50微米、原本频率相差20吉赫兹的分子,在其线宽的两倍范围内实现了共振。这种调谐方法无需额外的制造步骤,在此被独立应用于多个发射体,其发射线宽仅受自发衰变限制,非均匀展宽限制在1纳米以内。因此,该系统在光子量子技术方面展现出了前景。

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