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首页> 外文期刊>The Journal of Chemical Physics >Molecular force fields with gradient-domain machine learning: Construction and application to dynamics of small molecules with coupled cluster forces
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Molecular force fields with gradient-domain machine learning: Construction and application to dynamics of small molecules with coupled cluster forces

机译:具有梯度域机的分子力场学习:构建和应用于耦合集群力的小分子动态

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摘要

We present the construction of molecular force fields for small molecules (less than 25 atoms) using the recently developed symmetrized gradient-domain machine learning (sGDML) approach [Chmiela et al., Nat. Commun. 9, 3887 (2018) and Chmiela et al., Sci. Adv. 3, e1603015 (2017)]. This approach is able to accurately reconstruct complex high-dimensional potential-energy surfaces from just a few 100s of molecular conformations extracted from ab initio molecular dynamics trajectories. The data efficiency of the sGDML approach implies that atomic forces for these conformations can be computed with high-level wavefunction-based approaches, such as the "gold standard" coupled-cluster theory with single, double and perturbative triple excitations [CCSD(T)]. We demonstrate that the flexible nature of the sGDML model recovers local and non-local electronic interactions (e. g., H-bonding, proton transfer, lone pairs, changes in hybridization states, steric repulsion, and n -> pi* interactions) without imposing any restriction on the nature of interatomic potentials. The analysis of sGDML molecular dynamics trajectories yields new qualitative insights into dynamics and spectroscopy of small molecules close to spectroscopic accuracy. Published under license by AIP Publishing.
机译:我们使用最近开发的对称梯度域机学习(SGDML)方法介绍了小分子(小于25个原子)的分子力场的构造[Chmiela等,NAT。安排。 9,3887(2018)和Chmiela等人。,SCI。 adv。 3,E1603015(2017)]。这种方法能够从AB Initio分子动力学轨迹中提取的仅需100多次分子构象来精确地重建复杂的高维势能表面。 SGDML方法的数据效率意味着可以用基于高电平的波峰的方法计算这些构象的原子力,例如具有单一,双和扰动三重激励的“金标准”耦合集群理论[CCSD(T) ]。我们证明SGDML模型的灵活性质恢复了局部和非局部电子相互作用(例如,H键合,质子转移,孤立对,杂交状态的变化,空间排斥和N - > PI *相互作用)而不施加限制对网状潜力的性质。 SGDML分子动力学轨迹的分析产生了近于光谱准确性的小分子动力学和光谱的新的定性见解。通过AIP发布在许可证下发布。

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