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Back-Influence of Molecular Motion on Energy Transfer in the Landau-Teller Model of Atom Molecule Scattering

机译:分子运动对Landau-Teller原子分子散射模型中分子运动对能量传递的反作用

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摘要

This year we celebrate the 80th anniversary of the Landau-Teller model for energy exchange in a collinear collision of an atom with a harmonic diatomic molecule. Even after 80 years though, the analytic theory to date has not included in it the back influence of the oscillator's motion on the energy transfer between the approaching particle and the molecule. This is the topic of the present paper. The back-influence can be obtained by employing classical second-order perturbation theory. The second-order theory is used in both a classical and semiclassical context. Classically, analytic expressions are derived for the final phase and action of the diatom, after the collision. The energy loss of the atom is shown to decrease linearly with the increasing energy of the oscillator. The magnitude of this decrease is a direct consequence of the back-reaction of the oscillator on the translational motion. The qualitative result is universal, in the sense that it is not dependent on the details of the interaction of the atom with the oscillator. A numerical application to a model collision of an Ar atom with a Br-2 diatom demonstrates the importance and accuracy of the second-order perturbation theory. The same results are then used to derive a second-order perturbation theory semiclassical expression for the quantum transition probability from initial vibrational state n(i) to final vibrational state n(f) of the oscillator. A comparison of the theory with exact quantum data is presented for a model collision of Br-2 with a hydrogen molecule, where the hydrogen molecule is considered as a single approaching particle.
机译:今年,我们庆祝Landau-Teller模型在原子与谐波双原子分子共线碰撞中进行能量交换的80周年。即使经过了80年,迄今为止的分析理论还没有将振荡器运动对正在接近的粒子与分子之间的能量传递的反作用包括在内。这是本文的主题。可以通过采用经典的二阶扰动理论来获得反向影响。古典和半古典语境都使用了二阶理论。经典地,在碰撞后得出硅藻的最终阶段和作用的解析表达式。原子的能量损失显示出随着振荡器能量的增加线性减小。这种减小的幅度是振荡器对平移运动的反作用的直接结果。从不依赖于原子与振荡器相互作用的细节的意义上讲,定性结果是通用的。在Ar原子与Br-2硅藻的模型碰撞中的数值应用证明了二阶微扰理论的重要性和准确性。然后,将相同的结果用于导出从振荡器的初始振动状态n(i)到最终振动状态n(f)的量子跃迁概率的二阶微扰理论半经典表达式。给出了理论与精确量子数据的比较,用于Br-2与氢分子的模型碰撞,其中氢分子被视为单个接近粒子。

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