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Activated quantum diffusion in a periodic potential above the crossover temperature

机译:激活量子扩散在交叉温度高于上方的周期性潜力

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摘要

The recently improved Pollak, Grabert, and Hanggi (PGH) turnover theory for activated surface diffusion, including finite barrier effects, is extended and studied in the quantum domain. Analytic expressions are presented for the diffusion coefficient, escape rate, hopping distribution, and mean squared path length of particles initially trapped in one of the wells of a periodic potential, moving under the influence of a frictional and Gaussian random force. Tunneling is included by assuming incoherent quantum hopping at temperatures which are above the crossover temperature between deep tunneling and thermal activation. In the improved version of PGH theory as applied to activated surface diffusion, the potential governing the motion of the unstable mode remains periodic but with a scaled mass which increases with the friction strength. Application of the theory to a periodic cosine potential demonstrates that in the weak damping regime quantum diffusion is slower than classical diffusion due to above barrier quantum reflection which significantly shortens the mean squared path length as compared to the classical result. Finite barrier corrections increase this quantum suppression of diffusion or, equivalently, the inverse isotope effect, whereby the diffusion is faster for a heavier mass. Published under license by AIP Publishing.
机译:最近改进的Pollak,Grabert和Hanggi(PGH)换层理论,用于激活表面扩散,包括有限屏障效应,在量子结构域中延伸和研究。解析表达式都用于初始被困在一个周期性电势的孔中的一个粒子的扩散系数,逃逸率,跳跃分布,和均方路径长度,摩擦和高斯随机力的影响下移动。通过假设在高于深隧道和热激活之间的交叉温度的温度下,通过在温度下的不相干量子跳跃来包括隧道。在应用于激活表面扩散的PGH理论的改进版本中,控制不稳定模式的运动的潜力保持周期性,但具有缩放质量,其含有摩擦强度。理论在周期性余弦电位中的应用表明,由于上述屏障量子反射,在弱阻尼系统中,由于上述屏障量子反射,而不是经典的势态反射显着缩短平均平坦的路径长度。有限屏障校正增加这种量子抑制的扩散或等效逆同位素效应,从而较重质量的扩散更快。通过AIP发布在许可证下发布。

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