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QUANTUM-CLASSICAL MOLECULAR DYNAMICS AND ITS COMPUTER IMPLEMENTATION

机译:量子经典分子动力学及其计算机实现

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Quantum-classical and quantum-stochastic molecular dynamics (QCMD/QSMD) models are formulated and applied for quantum proton transfer processes. The protein dynamics are described by the time-dependent Schroedinger equation and the motion of classical atoms by the Newtonian or Langevin equations of motion. Instantaneous positions of the classical atoms determine the potential energy surface for the proton dynamics. In turn, the proton wavefunction influences the classical atoms through nonstationary Hellmann-Feynman forces (Bala et al., 1994c). The QCMD/QSMD algorithm is described and numerical results for a proton-bound ammonia-ammonia dimer and an enzyme, phospho-lipase A_2, are presented. In the case of the enzyme molecule a valence-bond orbital method is used to compute the potential energy function for the proton transfer. The methods are found to be promising tools in studies of molecular and enzymatic reactions in which quantum-dynamical effects cannot be neglected.
机译:制定了量子经典和量子随机分子动力学(QCMD / QSMD)模型,并将其应用于量子质子转移过程。蛋白质动力学由时间相关的Schroedinger方程描述,经典原子的运动由牛顿运动或Langevin运动方程描述。经典原子的瞬时位置决定了质子动力学的势能面。反过来,质子波函数通过非平稳的Hellmann-Feynman力影响经典原子(Bala等,1994c)。描述了QCMD / QSMD算法,并给出了质子结合的氨氨二聚体和酶磷脂酶A_2的数值结果。在酶分子的情况下,价键轨道方法用于计算质子转移的势能函数。在无法忽略量子动力学效应的分子和酶反应研究中,发现该方法是很有前途的工具。

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