Consiglio Nazionale delle Ricerche, Istituto di Fisica Applicata "Nello Carrara," via Madonna del Piano 10, I-50019 Sesto Fiorentino, Italy.
Fakultät für Physik der Universität Wien, Strudlhofgasse 4, A-1090 Wien, Austria.
J Chem Phys. 2019 Feb 21;150(7):074502. doi: 10.1063/1.5085202.
We report the results of a ring polymer molecular dynamics study of the Kubo velocity autocorrelation function of a quantum fluid as para-hydrogen aimed at the comparison with its classical counterpart. Quite different density conditions were considered for both the classical and quantum cases, in order to compare the two systems before and after the dynamical crossover typically undergone by the velocity autocorrelation function (VAF) of fluids at densities around the triple point, where the shape of the function changes from a monotonic to an oscillatory behavior with a negative minimum. A detailed study of the phase diagram of classical para-hydrogen was necessary for a reasonable choice of the classical states to be taken into consideration, in the spirit of the classical principle of corresponding states. The shape of the quantum and classical VAF was thoroughly analyzed, exhibiting at all studied densities clear differences that might be taken as evidence of quantum effects. We show that these differences are substantially reduced by applying a state-dependent time scaling with respect to a reference time identified with the inverse of the collision rate. An even better coincidence in shape is found by comparing the two systems at slightly non-corresponding reduced densities, suggesting that the quantum system behaves almost like the classical one, but at systematically less dense reduced states of the latter. We also find an unexpected and quite interesting density trend of the collision rate of both classical and quantum para-hydrogen, which accounts for the effectiveness of the scaling throughout the explored density range. The mean kinetic energy and the diffusion coefficients are also discussed in some detail.
我们报告了环聚合物分子动力学研究的库珀速度自相关函数的量子流体的帕氢旨在与它的经典对应物进行比较。相当不同的密度条件被认为是经典和量子的情况下,为了比较两个系统之前和之后的动力学交叉通常经历的速度自相关函数(VAF)的流体在密度约三重点,函数的形状从单调变化为与负最小值的振荡行为。经典的帕氢的相图的详细研究是必要的为了合理选择经典状态来考虑,在经典的对应状态原理的精神。量子和经典的 VAF 的形状进行了彻底的分析,在所有研究的密度明显的差异,可能被视为量子效应的证据。我们表明,这些差异通过应用状态相关的时间缩放相对于参考时间大大减少,该参考时间与碰撞率的倒数相对应。通过比较两个系统在略微非对应减小的密度下,发现形状更吻合,这表明量子系统的行为几乎与经典系统一样,但在后者的系统密度减小的状态下,系统密度减小。我们还发现碰撞率的意想不到的和相当有趣的密度趋势的经典和量子帕氢,这说明了整个研究的密度范围内的缩放的有效性。平均动能和扩散系数也进行了一些详细的讨论。