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液相中的光选择性自适应飞秒量子控制

Photoselective adaptive femtosecond quantum control in the liquid phase.

作者信息

Brixner T, Damrauer N H, Niklaus P, Gerber G

机构信息

Physikalisches Institut, Universtät Würzburg, Germany.

出版信息

Nature. 2001 Nov 1;414(6859):57-60. doi: 10.1038/35102037.

Abstract

Coherent light sources can be used to manipulate the outcome of light-matter interactions by exploiting interference phenomena in the time and frequency domain. A powerful tool in this emerging field of 'quantum control' is the adaptive shaping of femtosecond laser pulses, resulting, for instance, in selective molecular excitation. The basis of this method is that the quantum system under investigation itself guides an automated search, via iteration loops, for coherent light fields best suited for achieving a control task designed by the experimenter. The method is therefore ideal for the control of complex experiments. To date, all demonstrations of this technique on molecular systems have focused on controlling the outcome of photo-induced reactions in identical molecules, and little attention has been paid to selectively controlling mixtures of different molecules. Here we report simultaneous but selective multi-photon excitation of two distinct electronically and structurally complex dye molecules in solution. Despite the failure of single parameter variations (wavelength, intensity, or linear chirp control), adaptive femtosecond pulse shaping can reveal complex laser fields to achieve chemically selective molecular excitation. Furthermore, our results prove that phase coherences of the solute molecule persist for more than 100 fs in the solvent environment.

摘要

相干光源可通过利用时域和频域中的干涉现象来操控光与物质相互作用的结果。在这个新兴的“量子控制”领域,一个强大的工具是飞秒激光脉冲的自适应整形,例如可实现选择性分子激发。该方法的基础是,所研究的量子系统本身通过迭代循环引导自动搜索,以寻找最适合实现实验者设计的控制任务的相干光场。因此,该方法对于复杂实验的控制而言非常理想。迄今为止,这项技术在分子系统上的所有演示都集中在控制相同分子中光致反应的结果,而很少关注对不同分子混合物的选择性控制。在此,我们报告了溶液中两种不同的电子和结构复杂染料分子的同时但选择性多光子激发。尽管单参数变化(波长、强度或线性啁啾控制)未能成功,但自适应飞秒脉冲整形可以揭示复杂的激光场以实现化学选择性分子激发。此外,我们的结果证明,溶质分子的相位相干在溶剂环境中持续超过100飞秒。

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