一维和三维激光催化的量子理论

T. Seideman, J. Krause, M. Shapiro
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引用次数: 6

摘要

提出了三维共线结构下激光催化H + H2交换反应的理论。对强激光场中的共线H + H2体系,采用非辐射过程的收敛耦合通道展开法和与辐射相互作用的精确分划法处理。该方法可以对任意数量的场强进行计算,比单场强计算所需的工作量小得多。通过研究光反应线形与散射能量的关系,揭示了光诱导反应散射共振的特征。结果表明,当碰撞能量调整为共振时,激光催化会导致产物H2分子的选择性振动激发。讨论了这一效应对过去和未来实验的意义。然后提出了基于相同精确划分技术的三维理论。在这种情况下,作为理论输入的无界散射振幅是通过假设在受阻转子振动绝热基础上的可分性来获得的。我们利用该理论计算了反应微分和积分激光催化截面。我们研究了反应性对激光强度的依赖性,孤立的和重叠的功率展宽共振的作用,以及试剂相对速度的角度如何影响反应性。
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Quantum theory of laser catalysis in one and three dimensions
A theory of the laser catalysis of the H + H2 exchange reaction in the collinear configuration and in three dimensions is presented. The collinear H + H2 system in a strong laser field is treated by a method composed of a converged coupled channels expansion for the non-radiative processes, coupled with an exact partitioning technique for the interaction with the radiation. The method enables computations to be performed for an arbitrary number of field-intensities with very little effort beyond that required for a single-intensity computation.By studying the optical reactive line-shapes as a function of the scattering energy, the signature of the scattering resonances on optically induced reaction is unravelled. It is shown that when the collision energy is tuned to a resonance, laser catalysis results in selective vibrational excitation of the product H2 molecule. Implications of this effect for past and future experiments are discussed.A three-dimensional theory based on the same exact partitioning technique is then presented. In this case, the bound–free scattering amplitudes, which serve as input to the theory, are obtained by assuming separability in terms of a hindered-rotor vibrationally adiabatic basis. We use the theory to compute reactive differential and integral laser-catalysis cross-sections. We study the laser intensity dependence of the reactivity, the role played by isolated and overlapping power-broadened resonances and how the angle of the relative velocities of the reagents affects the reactivity.
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