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使用整形飞秒脉冲控制花菁染料中的S2群体。

Controlling S2 Population in Cyanine Dyes Using Shaped Femtosecond Pulses.

作者信息

Nairat Muath, Konar Arkaprabha, Lozovoy Vadim V, Beck Warren F, Blanchard G J, Dantus Marcos

机构信息

Department of Chemistry, Michigan State University , East Lansing, Michigan 48824, United States.

Department of Physics and Astronomy, Michigan State University , East Lansing, Michigan 48824, United States.

出版信息

J Phys Chem A. 2016 Mar 24;120(11):1876-85. doi: 10.1021/acs.jpca.6b01835. Epub 2016 Mar 14.

Abstract

Fast population transfer from higher to lower excited states occurs via internal conversion (IC) and is the basis of Kasha's rule, which states that spontaneous emission takes place from the lowest excited state of the same multiplicity. Photonic control over IC is of interest because it would allow direct influence over intramolecular nonradiative decay processes occurring in condensed phase. Here we tracked the S2 and S1 fluorescence yield for different cyanine dyes in solution as a function of linear chirp. For the cyanine dyes with polar solvation response IR144 and meso-piperidine substituted IR806, increased S2 emission was observed when using transform limited pulses, whereas chirped pulses led to increased S1 emission. The nonpolar solvated cyanine IR806, on the other hand, did not show S2 emission. A theoretical model, based on a nonperturbative solution of the equation of motion for the density matrix, is offered to explain and simulate the anomalous chirp dependence. Our findings, which depend on pulse properties beyond peak intensity, offer a photonic method to control S2 population thereby opening the door for the exploration of photochemical processes initiated from higher excited states.

摘要

快速的从高能级激发态到低能级激发态的粒子数转移通过内转换(IC)发生,这是卡莎规则的基础,该规则指出自发辐射从相同多重性的最低激发态发生。对IC的光子控制备受关注,因为这将允许直接影响凝聚相中发生的分子内非辐射衰变过程。在这里,我们跟踪了溶液中不同菁染料的S2和S1荧光产率随线性啁啾的变化。对于具有极性溶剂化响应的菁染料IR144和中-哌啶取代的IR806,使用变换极限脉冲时观察到S2发射增加,而啁啾脉冲导致S1发射增加。另一方面,非极性溶剂化的菁染料IR806没有显示出S2发射。基于密度矩阵运动方程的非微扰解提供了一个理论模型来解释和模拟反常的啁啾依赖性。我们的发现依赖于峰值强度之外的脉冲特性,提供了一种控制S2粒子数的光子方法,从而为探索从高能级激发态引发的光化学过程打开了大门。

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