most citedNEP89: Universal neuroevolution potential for inorganic and organic materials across 89 elements

19 citations · 21 across the 3 of their papers we have counts for

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cond-mat.mtrl-sci202619 cited

NEP89: Universal neuroevolution potential for inorganic and organic materials across 89 elements

Ting Liang, Ke Xu, Eric Lindgren +16

While machine-learned interatomic potentials offer near-quantum-mechanical accuracy for atomistic simulations, many are material-specific or computationally intensive, limiting the…

cond-mat.mtrl-sci2024

Lattice distortion leads to glassy thermal transport in crystalline CsBiICl

Zezhu Zeng, Zheyong Fan, Michele Simoncelli +5

The glassy thermal conductivities observed in crystalline inorganic perovskites such as CsBiICl is perplexing and lacking theoretical explanations. Here, we first e…

cond-mat.mtrl-sci2024

Phonon coherence and minimum thermal conductivity in disordered superlattice

Xin Wu, Zhang Wu, Ting Liang +4

Phonon coherence elucidates the propagation and interaction of phonon quantum states within superlattice, unveiling the wave-like nature and collective behaviors of phonons. Taking…

cond-mat.mtrl-sci2024

Highly efficient path-integral molecular dynamics simulations with GPUMD using neuroevolution potentials: Case studies on thermal properties of materials

Penghua Ying, Wenjiang Zhou, Lucas Svensson +10

Path-integral molecular dynamics (PIMD) simulations are crucial for accurately capturing nuclear quantum effects in materials. However, their computational intensity and reliance o…

cond-mat.mtrl-sci2024

General-purpose machine-learned potential for 16 elemental metals and their alloys

Keke Song, Rui Zhao, Jiahui Liu +25

Machine-learned potentials (MLPs) have exhibited remarkable accuracy, yet the lack of general-purpose MLPs for a broad spectrum of elements and their alloys limits their applicabil…