Cheng Bingqing, Ceriotti Michele
Laboratory of Computational Science and Modeling, École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.
J Chem Phys. 2014 Dec 28;141(24):244112. doi: 10.1063/1.4904293.
Fractionation of isotopes among distinct molecules or phases is a quantum effect which is often exploited to obtain insights on reaction mechanisms, biochemical, geochemical, and atmospheric phenomena. Accurate evaluation of isotope ratios in atomistic simulations is challenging, because one needs to perform a thermodynamic integration with respect to the isotope mass, along with time-consuming path integral calculations. By re-formulating the problem as a particle exchange in the ring polymer partition function, we derive new estimators giving direct access to the differential partitioning of isotopes, which can simplify the calculations by avoiding thermodynamic integration. We demonstrate the efficiency of these estimators by applying them to investigate the isotope fractionation ratios in the gas-phase Zundel cation, and in a few simple hydrocarbons.
不同分子或相之间同位素的分馏是一种量子效应,常用于深入了解反应机制、生物化学、地球化学和大气现象。在原子模拟中准确评估同位素比率具有挑战性,因为需要对同位素质量进行热力学积分,同时还要进行耗时的路径积分计算。通过将问题重新表述为环形聚合物配分函数中的粒子交换,我们推导出了新的估计器,可直接获取同位素的微分分配,从而避免热力学积分,简化计算。我们将这些估计器应用于研究气相中津德尔阳离子和一些简单烃类中的同位素分馏比率,证明了它们的有效性。