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1篇 您的检索式:作者名="Ruggero Lot"
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1A systematic approach to generating accurate neural network potentials:the case of carbon显示文摘Availability of affordable and widely applicable interatomic potentials is the key needed to unlock the riches of modern materials modeling.Artificial neural network-based approaches for generating potentials are promising;however,neural network training requires large amounts of data,sampled adequately from an often unknown potential energy surface.Here we propose a selfconsistent approach that is based on crystal structure prediction formalism and is guided by unsupervised data analysis,to construct an accurate,inexpensive,and transferable artificial neural network potential.Using this approach,we construct an interatomic potential for carbon and demonstrate its ability to reproduce first principles results on elastic and vibrational properties for diamond,graphite,and graphene,as well as energy ordering and structural properties of a wide range of crystalline and amorphous phases.Yusuf Shaidu Emine Küçükbenli Ruggero Lot Franco Pellegrini Efthimios Kaxiras Stefano de Gironcoli 2021npj Computational Materials2021,,1:1
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