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Generating Converged Accurate Free Energy Surfaces for Chemical Reactions with a Force-Matched Semiempirical Model

机译:产生与力匹配的半级模型的化学反应的收敛精确的能量表面

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We demonstrate the capability of creating robust density functional tight binding (DFTB) models for chemical reactivity in prebiotic mixtures through force matching to short time scale quantum free energy estimates. Molecular dynamics using density functional theory (DFT) is a highly accurate approach to generate free energy surfaces for chemical reactions, but the extreme computational cost often limits the time scales and range of thermodynamic states that can feasibly be studied. In contrast, DFTB is a semiempirical quantum method that affords up to a thousandfold reduction in cost and can recover DFT-level accuracy. Here, we show that a force-matched DFTB model for aqueous glycine condensation reactions yields free energy surfaces that are consistent with experimental observations of reaction energetics. Convergence analysis reveals that multiple nanoseconds of combined trajectory are needed to reach a steady-fluctuating free energy estimate for glycine condensation. Predictive accuracy of force-matched DFTB is demonstrated by direct comparison to DFT, with the two approaches yielding surfaces with large regions that differ by only a few kcal mol(-1).
机译:我们展示了在益生元混合物中产生鲁棒密度功能紧密结合(DFTB)模型的能力,通过匹配短时间尺度的量子自由能估计。使用密度函数理论(DFT)的分子动力学是一种高准确的方法,可以为化学反应产生自由能面,但极端的计算成本通常限制可以释放的热力学状态的时间尺度和范围。相比之下,DFTB是一种半级量子方法,其成本高达千倍,可以恢复DFT级精度。在这里,我们表明,用于含水甘氨酸缩合反应的力匹配的DFTB模型,产生与反应能量的实验观察一致的自由能表面。收敛分析显示,需要多个组合轨迹的纳秒来达到甘氨酸缩合的稳定波动能量估计。通过与DFT直接比较来证明力匹配的DFTB的预测精度,两种方法产生屈服的曲面,含有大区域的曲线(-1)。

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