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单量子点的快速且稳定的控制

Rapid and robust control of single quantum dots.

作者信息

Accanto Nicolò, de Roque Pablo M, Galvan-Sosa Marcial, Christodoulou Sotirios, Moreels Iwan, van Hulst Niek F

机构信息

ICFO - Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain.

Instituto de Óptica-CSIC, 28006 Madrid, Spain.

出版信息

Light Sci Appl. 2017 Mar 10;6(3):e16239. doi: 10.1038/lsa.2016.239. eCollection 2017 Mar.

Abstract

The combination of single particle detection and ultrafast laser pulses is an instrumental method to track dynamics at the femtosecond time scale in single molecules, quantum dots and plasmonic nanoparticles. Optimal control of the extremely short-lived coherences of these individual systems has so far remained elusive, yet its successful implementation would enable arbitrary external manipulation of otherwise inaccessible nanoscale dynamics. In ensemble measurements, such control is often achieved by resorting to a closed-loop optimization strategy, where the spectral phase of a broadband laser field is iteratively optimized. This scheme needs long measurement times and strong signals to converge to the optimal solution. This requirement is in conflict with the nature of single emitters whose signals are weak and unstable. Here we demonstrate an effective closed-loop optimization strategy capable of addressing single quantum dots at room temperature, using as feedback observable the two-photon photoluminescence induced by a phase-controlled broadband femtosecond laser. Crucial to the optimization loop is the use of a deterministic and robust-against-noise search algorithm converging to the theoretically predicted solution in a reduced amount of steps, even when operating at the few-photon level. Full optimization of the single dot luminescence is obtained within ~100 trials, with a typical integration time of 100 ms per trial. These times are faster than the typical photobleaching times in single molecules at room temperature. Our results show the suitability of the novel approach to perform closed-loop optimizations on single molecules, thus extending the available experimental toolbox to the active control of nanoscale coherences.

摘要

单粒子检测与超快激光脉冲相结合是一种用于在飞秒时间尺度上追踪单分子、量子点和等离子体纳米颗粒动力学的仪器方法。迄今为止,对这些单个系统极短寿命相干性的最佳控制仍然难以实现,然而其成功实施将能够对原本无法进入的纳米级动力学进行任意外部操纵。在系综测量中,这种控制通常通过采用闭环优化策略来实现,其中宽带激光场的光谱相位会被迭代优化。该方案需要较长的测量时间和强信号才能收敛到最优解。这一要求与单发射体的特性相冲突,因为单发射体的信号微弱且不稳定。在这里,我们展示了一种有效的闭环优化策略,该策略能够在室温下处理单个量子点,使用相位控制的宽带飞秒激光诱导的双光子光致发光作为反馈可观测量。优化循环的关键在于使用一种确定性且抗噪声的搜索算法,即使在单光子水平下运行,也能在减少的步数内收敛到理论预测的解。在约100次试验内可实现单个量子点发光的完全优化,每次试验的典型积分时间为100毫秒。这些时间比室温下单分子的典型光漂白时间要快。我们的结果表明,这种新方法适用于对单分子进行闭环优化,从而将可用的实验工具箱扩展到对纳米级相干性的主动控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cd7/6062170/acd0c885f791/lsa2016239f1.jpg

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