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Main Authors: Wang, Xiaoyu, Marqués, Miriam, Gómez, Sergio, Serratosa, Francesc, Zurek, Eva, Contreras-García, Julia
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.26445
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author Wang, Xiaoyu
Marqués, Miriam
Gómez, Sergio
Serratosa, Francesc
Zurek, Eva
Contreras-García, Julia
author_facet Wang, Xiaoyu
Marqués, Miriam
Gómez, Sergio
Serratosa, Francesc
Zurek, Eva
Contreras-García, Julia
contents We develop a machine-learning framework to predict the electron localization function (ELF) of pure, dense hydrogen directly from atomic geometry, bypassing explicit electronic-structure calculations. Trained on first-principles data spanning multiple pressure regimes in dense fluid hydrogen, the model achieves high accuracy ($R^2 > 0.99$) and faithfully reproduces the global distribution of the ELF. A combined real- and reciprocal-space analysis reveals that the residual error is dominated by smooth, long-wavelength components with correlation lengths exceeding typical H--H bonding scales, and that the magnitude of these components increases systematically with pressure. Despite being trained exclusively on dense fluid hydrogen networks, the model transfers robustly to crystalline hydrogen configurations, preserving key features of ELF topology, including critical points and hydrogen-network connectivity. Taken together, these results suggest a viable route toward geometry-based, high-throughput evaluation of hydrogen-networking characteristics in both fluid and crystalline hydrogen.
format Preprint
id arxiv_https___arxiv_org_abs_2604_26445
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Geometry-Based Neural-Network Prediction of Electron Localization Function Topology in Dense Hydrogen
Wang, Xiaoyu
Marqués, Miriam
Gómez, Sergio
Serratosa, Francesc
Zurek, Eva
Contreras-García, Julia
Materials Science
We develop a machine-learning framework to predict the electron localization function (ELF) of pure, dense hydrogen directly from atomic geometry, bypassing explicit electronic-structure calculations. Trained on first-principles data spanning multiple pressure regimes in dense fluid hydrogen, the model achieves high accuracy ($R^2 > 0.99$) and faithfully reproduces the global distribution of the ELF. A combined real- and reciprocal-space analysis reveals that the residual error is dominated by smooth, long-wavelength components with correlation lengths exceeding typical H--H bonding scales, and that the magnitude of these components increases systematically with pressure. Despite being trained exclusively on dense fluid hydrogen networks, the model transfers robustly to crystalline hydrogen configurations, preserving key features of ELF topology, including critical points and hydrogen-network connectivity. Taken together, these results suggest a viable route toward geometry-based, high-throughput evaluation of hydrogen-networking characteristics in both fluid and crystalline hydrogen.
title Geometry-Based Neural-Network Prediction of Electron Localization Function Topology in Dense Hydrogen
topic Materials Science
url https://arxiv.org/abs/2604.26445