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Temperature Transferability of Force Field Parameters for Dispersion Interactions

机译:力场参数对色散相互作用的温度可转换性

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The accuracy of force fields is a key to the successful prediction of the thermodynamic properties of materials. In simulations of organic molecules over large temperature ranges, atomistic force fields that are parametrized at, or near, ambient temperatures are found to systematically underestimate the intermolecular dispersion interactions at elevated temperatures. Analysis of the underestimates using diatomic molecules indicates that a minor part is due to the change in molecular polarizability, while the major part is due to the reduced dielectric constant of the bulk liquid as the density decreases with increasing temperature. By establishing the dispersion parameter as a linear function of temperature, we have successfully enhanced the temperature transferability of atomistic force fields. This approach is tested on 66 molecular liquids covering four functional groups - alkane, aromatic, ether, and ketone-aldehyde - over a broad range of temperatures by calculating liquid density, heat of vaporization, isobaric heat capacity, and shear viscosity.
机译:力场的准确性是成功预测材料热力学性质的关键。在大温度范围内的有机分子的模拟中,发现在升高的温度下的分子间分散相互作用或附近的载体中的有机分子的模拟。利用硅藻分子的低低端分析表明较小部分是由于分子极化性的变化,而主要部分是由于散装液的介电常数,因为密度随温度的增加而降低。通过将分散参数作为温度的线性函数建立,我们已经成功地增强了原子力场的温度可转换性。通过计算液体密度,汽化的热量,异常热容量和剪切粘度,在覆盖四个官能团 - 烷烃,芳族,乙醚和酮 - 醛的66个分子液体上进行测试。

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