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首页> 外文期刊>The Journal of Chemical Physics >Spin dynamics simulation of electron spin relaxation in Ni~(2+)(aq)
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Spin dynamics simulation of electron spin relaxation in Ni~(2+)(aq)

机译:Ni〜(2 +)(aq)中电子自旋弛豫的自旋动力学模拟

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摘要

The ability to quantitatively predict and analyze the rate of electron spin relaxation of open-shell systems is important for electron paramagnetic resonance and paramagnetic nuclear magnetic resonance spectroscopies. We present a combined molecular dynamics (MD), quantum chemistry (QC), and spin dynamics simulation method for calculating such spin relaxation rates. The method is based on the sampling of a MD trajectory by QC calculations, to produce instantaneous parameters of the spin Hamiltonian used, in turn, to numerically solve the Liouville-von Neumann equation for the time evolution of the spin density matrix. We demonstrate the approach by simulating the relaxation of electron spin in an aqueous solution of Ni~(2+) ion. The spin-lattice (T_1) and spin-spin (T_2) relaxation rates are extracted directly from the simulations of the time dependence of the longitudinal and transverse magnetization, respectively. Good agreement with the available, indirectly obtained experimental data is obtained by our method.
机译:定量预测和分析开壳系统电子自旋弛豫速率的能力对于电子顺磁共振和顺磁核磁共振光谱学很重要。我们提出了一种组合的分子动力学(MD),量子化学(QC)和自旋动力学模拟方法来计算这种自旋弛豫率。该方法基于通过QC计算对MD轨迹进行采样,以产生自旋哈密顿量的瞬时参数,进而使用该数值对自旋密度矩阵的时间演化进行数值求解Liouville-von Neumann方程。我们通过模拟Ni〜(2+)离子水溶液中电子自旋的弛豫来证明该方法。分别从纵向和横向磁化强度的时间依赖性模拟中直接提取自旋晶格(T_1)和自旋自旋(T_2)弛豫率。通过我们的方法可以获得与可获得的,间接获得的实验数据的良好一致性。

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