Liu Hao, Cao Jianwei, Bian Wensheng
Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing, China.
School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing, China.
Front Chem. 2019 Oct 23;7:676. doi: 10.3389/fchem.2019.00676. eCollection 2019.
Double proton transfer plays an important role in biology and chemistry, such as with DNA base pairs, proteins and molecular clusters, and direct information about these processes can be obtained from tunneling splittings. Carboxylic acid dimers are prototypes for multiple proton transfer, of which the formic acid dimer is the simplest one. Here, we present efficient quantum dynamics calculations of ground-state and fundamental excitation tunneling splittings in the formic acid dimer and its deuterium isotopologues. These are achieved with a multidimensional scheme developed by us, in which the saddle-point normal coordinates are chosen, the basis functions are customized for the proton transfer process, and the preconditioned inexact spectral transform method is used to solve the resultant eigenvalue problem. Our computational results are in excellent agreement with the most recent experiments (Zhang et al., 2017; Li et al., 2019).
双质子转移在生物学和化学中起着重要作用,例如在DNA碱基对、蛋白质和分子簇中,并且关于这些过程的直接信息可以从隧穿分裂中获得。羧酸二聚体是多质子转移的原型,其中甲酸二聚体是最简单的一种。在此,我们展示了甲酸二聚体及其氘同位素体基态和基本激发隧穿分裂的高效量子动力学计算。这些计算是通过我们开发的多维方案实现的,其中选择了鞍点正则坐标,针对质子转移过程定制了基函数,并使用预处理的不精确谱变换方法来求解由此产生的本征值问题。我们的计算结果与最新实验(Zhang等人,2017年;Li等人,2019年)高度吻合。