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首页> 外文期刊>The Journal of Chemical Physics >Levitation effect in zeolites: Quasielastic neutron scattering and molecular dynamics study of pentane isomers in zeolite NaY
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Levitation effect in zeolites: Quasielastic neutron scattering and molecular dynamics study of pentane isomers in zeolite NaY

机译:沸石的悬浮作用:NaY分子中准弹性中子散射和戊烷异构体的分子动力学研究

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We report the quasielastic neutron scattering (QENS) and molecular dynamics (MD) investigations into diffusion of pentane isomers in zeolite NaY. The molecular cross section perpendicular to the long molecular axis varies for the three isomers while the mass and the isomer-zeolite interaction remains essentially unchanged. Both QENS and MD results show that the branched isomers neopentane and isopentane have higher self-diffusivities as compared with n-pentane at 300 K in NaY zeolite. This result provides direct experimental evidence for the existence of nonmonotonic, anomalous dependence of self-diffusivity on molecular diameter known as the levitation effect. The energetic barrier at the bottleneck derived from MD simulations exists for n-pentane which lies in the linear regime while no such barrier is seen for neopentane which is located clearly in the anomalous regime. Activation energy is in the order Ea(n-pentane )Ea(isopentane) (Ea)(neopentane) consistent with the predictions of the levitation effect. In the liquid phase, it is seen that D(n-pentane)D(isopentane)D(neopentane) and Ea(n)pentane Ea(isopentane) Ea(neopentane). Intermediate scattering function for small wavenumbers obtained from MD follows a single exponential decay for neopentane and isopentane. For n-pentane, a single exponential fit provides a poor fit especially at short times. Cage residence time is largest for n-pentane and lowest for neopentane. For neopentane, the width of the self-part of the dynamic structure factor shows a near monotonic decrease with wavenumber. For n-pentane a minimum is seen near k=0.5 A-1 suggesting a slowing down of motion around the 12-ring window, the bottleneck for diffusion. Finally, the result that the branched isomer has a higher diffusivity as compared with the linear analog is at variation from what is normally seen.
机译:我们报告准分子中子散射(QENS)和分子动力学(MD)调查的沸石NaY中戊烷异构体的扩散。垂直于长分子轴的分子截面对于三种异构体是变化的,而质量和异构体-沸石相互作用基本上保持不变。 QENS和MD结果均表明,与NaY沸石中300 K时的正戊烷相比,支链异构体新戊烷和异戊烷具有更高的自扩散性。这一结果提供了直接的实验证据,证明存在非单调的,自扩散性对分子直径的异常依赖性,即悬浮效应。通过MD模拟得出的瓶颈处的高能势垒存在于正戊烷(处于线性状态),而对于新戊烷(处于明显异常状态)则没有这种障碍。活化能的顺序为Ea(正戊烷)Ea(异戊烷)(Ea)(新戊烷),与悬浮效应的预测一致。在液相中,可以看到D(正戊烷)D(异戊烷)D(新戊烷)和Ea(n)戊烷Ea(异戊烷)Ea(新戊烷)。从MD获得的小波数的中间散射函数遵循新戊烷和异戊烷的单指数衰减。对于正戊烷,单指数拟合拟合效果较差,尤其是在短时间内。笼形停留时间对于正戊烷最大,而对于新戊烷则最短。对于新戊烷,动态结构因子的自部分宽度随波数显示出近乎单调的减小。对于正戊烷,在k = 0.5 A-1附近观察到最小值,表明围绕12环窗口的运动减慢了,这是扩散的瓶颈。最后,与线性类似物相比,支链异构体具有更高的扩散率的结果与通常所见有所不同。

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