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Matthew Nutter

Publications and source records attributed to Matthew Nutter.

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Efficient and Accurate Spatial Mixing of Machine Learned Interatomic Potentials for Materials Science

Machine-learned interatomic potentials can offer near first-principles accuracy but are computationally expensive, limiting their application to large-scale molecular dynamics simulations. Inspired by quantum mechanics/molecular mechanics methods we present ML-MIX, a CPU- and GPU-compatible LAMMPS package to accelerate simulations by spatially mixing interatomic potentials of different complexities allowing deployment of modern MLIPs even under restricted computational budgets. We demonstrate our method for ACE, UF3, SNAP and MACE potential architectures and demonstrate how linear 'cheap' potentials can be distilled from a given 'expensive' potential, allowing close matching in relevant regions of configuration space. The functionality of ML-MIX is demonstrated through tests on point defects in Si, Fe and W-He, in which speedups of up to 11x over ~ 8,000 atoms are demonstrated, without sacrificing accuracy. The scientific potential of ML-MIX is demonstrated via two case studies in W, measuring the mobility of b = 1/2 111 screw dislocations with ACE/ACE mixing and the implantation of He with MACE/SNAP mixing. The latter returns He reflection coefficients which (for the first time) match experimental observations up to an He incident energy of 80 eV - demonstrating the benefits of deploying state-of-the-art models on large, realistic systems.

cond-mat.mtrl-sci

Kink-Helium Interactions in Tungsten: Increased Dislocation Mobility in the Infinitely Dilute Regime

Point defects such as interstitial atoms are known to be attracted to screw dislocations. Understanding these interaction mechanisms is key to predicting the plasticity of real materials. Using a new machine learning interatomic potential derived from ab initio calculations of helium in tungsten, we investigate the binding of small helium clusters ($He_{n}$, ${n}=1-3$) to screw dislocation kinks. We find that helium binds significantly more strongly to kinks than to straight dislocation segments. For a single helium atom, the preference reduces the kink pair nucleation energy from 1.58 eV in pure tungsten to 0.48 eV when helium binds to the vacancy kink, indicative of increased dislocation mobility (material softening). In the case of ${n}=2$, kink binding stabilises the kink pair configuration as the ground state, while the straight dislocation is metastable; the two are separated by a 0.60 eV barrier that is the rate determining step for dislocation motion. The energy difference between the ground state kink pair and the metastable straight dislocation increases for ${n}=3$, connected by a 1.00 eV barrier, indicating a progressive loss of the softening effect with increasing cluster size. Molecular dynamics simulations at 900 K support the proposed existence of helium-induced softening in this extremely dilute regime.

cond-mat.mtrl-sci