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Complete elimination of nonlinear light-matter interactions with broadband ultrafast laser pulses

机译:完全消除与宽带超快激光脉冲的非线性浅型相互作用

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The absorption of a single photon that excites a quantum system from a low to a high energy level is an elementary process of light-matter interaction, and a route towards realizing pure single-photon absorption has both fundamental and practical implications in quantum technology. Due to nonlinear optical effects, however, the probability of pure single-photon absorption is usually very low, which is particularly pertinent in the case of strong ultrafast laser pulses with broad bandwidth. Here we demonstrate theoretically a counterintuitive coherent single-photon absorption scheme by eliminating nonlinear interactions of ultrafast laser pulses with quantum systems. That is, a completely linear response of the system with respect to the spectral energy density of the incident light at the transition frequency can be obtained for all transition probabilities between 0 and 100% in multilevel quantum systems. To that end, a multiobjective optimization algorithm is developed to find an optimal spectral phase of an ultrafast laser pulse, which is capable of eliminating all possible nonlinear optical responses while maximizing the probability of single-photon absorption between quantum states. This work not only deepens our understanding of light-matter interactions, but also offers a way to study photophysical and photochemical processes in the "absence" of nonlinear optical effects.
机译:从低功率水平开始激发量子系统的单个光子的吸收是光物质相互作用的基本过程,并且实现纯单光子吸收的途径具有对量子技术的基本和实际意义。然而,由于非线性光学效应,纯单光子吸收的概率通常非常低,这在具有宽带宽的强超速激光脉冲的情况下特别有关。在这里,我们通过消除用量子系统的超快激光脉冲的非线性相互作用来证明对逆行的连贯的单光子吸收方案。也就是说,对于在多级量子系统中的所有转换概率,可以获得在转换频率下的入射光的光谱能量密度的完全线性响应。为此,开发了一种多目标优化算法以找到超快激光脉冲的最佳光谱相,这能够消除所有可能的非线性光学响应,同时最大化量子状态之间的单光子吸收的概率。这项工作不仅深化了我们对幻灯的理解,而且还提供了一种在非线性光学效应的“缺席”中研究了光学物质和光化学过程的方法。

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