Schwenk Christian F, Rode Bernd M
Institute of General, Inorganic and Theoretical Chemistry, University of Innsbruck, Innrain 52a, 6020 Innsbruck, Austria.
Chemphyschem. 2003 Sep 15;4(9):931-43. doi: 10.1002/cphc.200300659.
The CuII hydration shell structure has been studied by means of classical molecular dynamics (MD) simulations including three-body corrections and hybrid quantum-mechanical/molecular-mechanical (QM/MM) molecular dynamics (MD) simulations at the Hartree-Fock level. The copper(II) ion is found to be six-fold coordinated and [Cu(H2O)6]2+ exhibits a distorted octahedral structure. The QM/MM MD approach reproduces correctly the experimentally observed Jahn-Teller effect but exhibits faster inversions (< 200 fs) and a more complex behaviour than expected from experimental data. The dynamic Jahn-Teller effect causes the high lability of [Cu(H2O)6]2+ with a ligand-exchange rate constant some orders or magnitude higher than its neighbouring ions NiII and ZnII. Nevertheless, no first-shell water exchange occurred during a 30-ps simulation. The structure of the hydrated ion is discussed in terms of radial distribution functions, coordination numbers, and various angular distributions and the dynamical properties as librational and vibrational motions and reorientational times were evaluated, which lead to detailed information about the first hydration shell. Second-shell water-exchange processes could be observed within the simulation time scale and yielded a mean ligand residence time of approximelty 20 ps.
通过经典分子动力学(MD)模拟(包括三体校正)以及在哈特里 - 福克水平的混合量子力学/分子力学(QM/MM)分子动力学(MD)模拟,研究了CuII水合壳层结构。发现铜(II)离子为六配位,且[Cu(H2O)6]2+呈现出扭曲的八面体结构。QM/MM MD方法正确地再现了实验观察到的 Jahn - Teller 效应,但表现出更快的反转(<200 fs)以及比实验数据预期更复杂的行为。动态 Jahn - Teller 效应导致[Cu(H2O)6]2+具有高活性,其配体交换速率常数比相邻离子NiII和ZnII高几个数量级。然而,在30 ps的模拟过程中未发生第一壳层水交换。根据径向分布函数、配位数、各种角分布讨论了水合离子的结构,并评估了作为平动和振动运动以及重取向时间的动力学性质,这导致了关于第一水合壳层的详细信息。在模拟时间尺度内可以观察到第二壳层水交换过程,并且得到的平均配体停留时间约为20 ps。