Atomistic simulations of nuclear fuel UO2 with machine learning interatomic potentials
被引:4
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作者:
Dubois, Eliott T.
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IRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
CEA, DAM, DIF, F-91297 Arpajon, FranceIRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
Dubois, Eliott T.
[1
,2
]
Tranchida, Julien
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IRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, FranceIRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
Tranchida, Julien
[1
]
Bouchet, Johann
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机构:
IRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, FranceIRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
Bouchet, Johann
[1
]
Maillet, Jean-Bernard
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机构:
CEA, DAM, DIF, F-91297 Arpajon, France
Univ Paris Saclay, CEA, Lab Matiere Condit Extremes, F-91680 Bruyeres Le Chatel, FranceIRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
Maillet, Jean-Bernard
[2
,3
]
机构:
[1] IRESNE, CEA, DES, DEC,SESC,LM2C, F-13108 St Paul Les Durance, France
[2] CEA, DAM, DIF, F-91297 Arpajon, France
[3] Univ Paris Saclay, CEA, Lab Matiere Condit Extremes, F-91680 Bruyeres Le Chatel, France
We present the development of machine-learning interatomic potentials for uranium dioxide UO2. Density functional theory calculations with a Hubbard U correction were leveraged to construct a training set of atomic configurations. This training set was designed to capture elastic and plastic deformations, as well as point and extended defects, and it was enriched through an active learning procedure. New configurations were added to the training database using a multiobjective criterion based on predicted uncertainties on energy and forces (obtained using a committee of models) and relative distances between new configurations in descriptor space. Two machine-learning potentials were developed based on physically sound pairwise potentials, which include the Coulombic interaction: a neural network potential and a SNAP potential. These potentials were optimized to minimize the root mean square error on the training database. Subsequently, the SNAP potential was used to compute the stacking fault energy surface in multiple directions, and the stabilized configurations were employed for subsequent DFT minimizations. The final DFT stacking fault energy surfaces of UO2 are presented, and the associated configurations are included in the training database for a new optimization. Finally, the results obtained from both machine-learned potentials were compared to standard semiempirical ones, demonstrating their excellent predictive capabilities for solid properties. These properties include defect formation energies, gamma surface, elastic properties, and phonon dispersion curves up to the Breidig transition temperature.
机构:
IRSN, CE Cadarache, F-13115 St Paul Les Durance, FranceIRSN, CE Cadarache, F-13115 St Paul Les Durance, France
Arayro, Jack
Treglia, Guy
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机构:
Aix Marseille Univ, CNRS, CINaM, Ctr Interdisciplinaire Nanosci Marseille, F-13288 Marseille 9, FranceIRSN, CE Cadarache, F-13115 St Paul Les Durance, France
Treglia, Guy
Ribeiro, Fabienne
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机构:
IRSN, CE Cadarache, F-13115 St Paul Les Durance, FranceIRSN, CE Cadarache, F-13115 St Paul Les Durance, France
机构:
Nucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R ChinaNucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R China
Xiao, Hongxing
Long, Chongsheng
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机构:
Nucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R ChinaNucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R China
Long, Chongsheng
Tian, Xiaofeng
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机构:
Chengdu Univ Technol, Coll Nucl Technol & Automat Engn, Chengdu, Peoples R ChinaNucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R China
Tian, Xiaofeng
Chen, Hongsheng
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机构:
Nucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R ChinaNucl Power Inst China, Sci & Technol Reactor Fuel & Mat Lab, Chengdu, Peoples R China