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From the Cover: Molecular decision trees realized by ultrafast electronic spectroscopy

机译:从封面开始:通过超快速电子光谱学实现的分子决策树

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摘要

The outcome of a light–matter interaction depends on both the state of matter and the state of light. It is thus a natural setting for implementing bilinear classical logic. A description of the state of a time-varying system requires measuring an (ideally complete) set of time-dependent observables. Typically, this is prohibitive, but in weak-field spectroscopy we can move toward this goal because only a finite number of levels are accessible. Recent progress in nonlinear spectroscopies means that nontrivial measurements can be implemented and thereby give rise to interesting logic schemes where the outputs are functions of the observables. Lie algebra offers a natural tool for generating the outcome of the bilinear light–matter interaction. We show how to synthesize these ideas by explicitly discussing three-photon spectroscopy of a bichromophoric molecule for which there are four accessible states. Switching logic would use the on–off occupancies of these four states as outcomes. Here, we explore the use of all 16 observables that define the time-evolving state of the bichromophoric system. The bilinear laser–system interaction with the three pulses of the setup of a 2D photon echo spectroscopy experiment can be used to generate a rich parallel logic that corresponds to the implementation of a molecular decision tree. Our simulations allow relaxation by weak coupling to the environment, which adds to the complexity of the logic operations.
机译:光与物质相互作用的结果取决于物质的状态和光的状态。因此,这是实现双线性经典逻辑的自然设置。对时变系统状态的描述需要测量一组(理想情况下完整的)时变观测值。通常,这是禁止的,但是在弱场光谱学中,由于只能访问有限数量的级别,因此我们可以朝着这个目标迈进。非线性光谱学的最新进展意味着可以实现非平凡的测量,从而产生了有趣的逻辑方案,其中输出是可观测量的函数。李代数提供了一种自然的工具来产生双线性光-物质相互作用的结果。我们展示如何通过明确讨论具有四个可访问状态的双色分子的三光子光谱法来综合这些思想。切换逻辑会将这四个状态的开/关占用作为结果。在这里,我们探索了定义双发色系统的时间演化状态的所有16个可观测值的使用。双线性激光系统与2D光子回波光谱实验装置的三个脉冲的相互作用可用于生成与分子决策树的实现相对应的丰富并行逻辑。我们的仿真允许通过与环境的弱耦合来放松,这增加了逻辑运算的复杂性。

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