Predicting properties of periodic systems from cluster data: A case study of liquid water

被引:20
|
作者
Zaverkin, Viktor [1 ]
Holzmueller, David [2 ]
Schuldt, Robin [1 ]
Kaestner, Johannes [1 ]
机构
[1] Univ Stuttgart, Inst Theoret Chem, Pfaffenwaldring 55, D-70569 Stuttgart, Germany
[2] Univ Stuttgart, Inst Stochast & Applicat, Pfaffenwaldring 57, D-70569 Stuttgart, Germany
来源
JOURNAL OF CHEMICAL PHYSICS | 2022年 / 156卷 / 11期
关键词
MOLECULAR-DYNAMICS SIMULATIONS; POTENTIAL-ENERGY; DIFFUSION-COEFFICIENTS; CHARGE EQUILIBRATION; BASIS-SETS; FRAGMENTATION; MODELS; IMPLEMENTATION; APPROXIMATION; ADSORPTION;
D O I
10.1063/5.0078983
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The accuracy of the training data limits the accuracy of bulk properties from machine-learned potentials. For example, hybrid functionals or wave-function-based quantum chemical methods are readily available for cluster data but effectively out of scope for periodic structures. We show that local, atom-centered descriptors for machine-learned potentials enable the prediction of bulk properties from cluster model training data, agreeing reasonably well with predictions from bulk training data. We demonstrate such transferability by studying structural and dynamical properties of bulk liquid water with density functional theory and have found an excellent agreement with experimental and theoretical counterparts. Published under an exclusive license by AIP Publishing.
引用
收藏
页数:12
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