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Passive laser irradiation as a tool for optical catalysis

机译:被动激光辐照作为光催化的工具

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The mechanisms of absorption, emission, and scattering of photons form the foundations of optical interactions between light and matter. In the vast majority of such interactions there is a significant interplay and energy exchange between the radiation field and the material components. In absorption for example, modes of the field are depopulated by photons whose energy is at resonance with a molecular transition producing excited material states. In all such optical phenomena, the initial state of the radiation field differs in mode occupation to its final state. However, certain optical processes can involve off-resonance laser beams that are unchanged on interaction with the material: the output light, after interaction, is identical to the laser input. Such off-resonance interactions include forward Rayleigh scattering, responsible for the well-known gradient force in optical trapping, and the laser-induced intermolecular interaction commonly termed optical binding; in both processes, an intense beam delivers its effect without suffering change. It is possible for beams detuned from resonance to provide not only techniques for optomechanical and optical manipulation, but also to passively influence other important and functional interactions such as absorption from a resonant beam, or energy transfer. Such effects can be grouped under the banner of 'optical catalysis', since they can significantly influence resonant processes. Furthermore, off-resonance photonics affords a potential to impact on chemical interactions, as in the passive modification of rotational constants and phase transitions. To date, apart from optical manipulation, the potential applicability of passive photonics, particularly in the realm of chemical physics and materials science, has received little attention. Here we open up this field, highlighting the distinct and novel role that off-resonance laser beams and the ensuing photonics can play.
机译:光子的吸收,发射和散射机制构成了光与物质之间光学相互作用的基础。在绝大多数此类相互作用中,辐射场与材料成分之间存在显着的相互作用和能量交换。例如,在吸收中,电场的模式被光子所分散,这些光子的能量与产生跃迁的材料态的分子跃迁共振。在所有这样的光学现象中,辐射场的初始状态在模式占据上不同于其最终状态。但是,某些光学过程可能涉及与材料相互作用时未改变的失谐激光束:相互作用后的输出光与激光输入相同。这种非共振相互作用包括前向瑞利散射(负责光学陷阱中的众所周知的梯度力),以及激光诱导的分子间相互作用(通常称为光学结合)。在这两个过程中,强烈的光束都能发挥作用,而不会发生变化。从共振失谐的光束不仅可以提供用于光机械和光学操纵的技术,而且可以被动地影响其他重要的和功能性的相互作用,例如从共振束吸收或能量转移。此类效应可以归类为“光学催化”,因为它们会显着影响共振过程。此外,非共振光子学有可能影响化学相互作用,例如在旋转常数和相变的被动修改中。迄今为止,除光学操纵外,无源光子的潜在适用性,特别是在化学物理学和材料科学领域中,几乎没有受到关注。在这里,我们打开这个领域,强调非共振激光束和随后的光子学可以发挥的独特而新颖的作用。

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