On-the-Fly Machine-Learned Force Fields for High-Fidelity Polymer Glass Transition Simulations

Fuente: arXiv
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Auteurs principaux: Srivastava, Ashutosh, Agarwal, Sakshi, Shukla, Shivank, Sahu, Harikrishna, Ramprasad, Rampi
Format: Preprint
Publié: 2026
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author Srivastava, Ashutosh
Agarwal, Sakshi
Shukla, Shivank
Sahu, Harikrishna
Ramprasad, Rampi
author_facet Srivastava, Ashutosh
Agarwal, Sakshi
Shukla, Shivank
Sahu, Harikrishna
Ramprasad, Rampi
contents Predicting polymer glass transition temperatures (Tg) with first-principles fidelity has long remained out of reach, as cooling multi-thousand-atom systems over a broad temperature range at acceptable rates exceeds the computational limits of ab initio molecular dynamics (AIMD). Here we employ a hybrid scheme that merges AIMD with accelerated on-the-fly (OTF) machine-learned force-field (MLFF) construction, enabling Tg prediction at quantum-mechanical accuracy with near-classical computational cost. The OTF protocol to construct MLFFs adaptively triggers first-principles calculations only when newly encountered configurations lie outside the current model's domain of confidence, allowing robust, parameter-free MLFFs to be built from merely 1000 AIMD-sampled configurations per polymer. These MLFFs are then utilized to perform long-time cooling simulations on amorphous supercells containing several thousand atoms. Applied across twelve polymers spanning aromatic, aliphatic, heteroatomic, and branched chemistries, the method yields predictions in excellent accord with experiment while reducing computational cost by approximately six orders of magnitude relative to AIMD. This work establishes a new paradigm for predictive polymer modeling, demonstrating that OTF-MLFFs provide a generalizable, accurate, and scalable route to simulating the thermophysical behavior of complex disordered materials at quantum-mechanical fidelity.
format Preprint
id arxiv_https___arxiv_org_abs_2601_17137
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle On-the-Fly Machine-Learned Force Fields for High-Fidelity Polymer Glass Transition Simulations
Srivastava, Ashutosh
Agarwal, Sakshi
Shukla, Shivank
Sahu, Harikrishna
Ramprasad, Rampi
Materials Science
Predicting polymer glass transition temperatures (Tg) with first-principles fidelity has long remained out of reach, as cooling multi-thousand-atom systems over a broad temperature range at acceptable rates exceeds the computational limits of ab initio molecular dynamics (AIMD). Here we employ a hybrid scheme that merges AIMD with accelerated on-the-fly (OTF) machine-learned force-field (MLFF) construction, enabling Tg prediction at quantum-mechanical accuracy with near-classical computational cost. The OTF protocol to construct MLFFs adaptively triggers first-principles calculations only when newly encountered configurations lie outside the current model's domain of confidence, allowing robust, parameter-free MLFFs to be built from merely 1000 AIMD-sampled configurations per polymer. These MLFFs are then utilized to perform long-time cooling simulations on amorphous supercells containing several thousand atoms. Applied across twelve polymers spanning aromatic, aliphatic, heteroatomic, and branched chemistries, the method yields predictions in excellent accord with experiment while reducing computational cost by approximately six orders of magnitude relative to AIMD. This work establishes a new paradigm for predictive polymer modeling, demonstrating that OTF-MLFFs provide a generalizable, accurate, and scalable route to simulating the thermophysical behavior of complex disordered materials at quantum-mechanical fidelity.
title On-the-Fly Machine-Learned Force Fields for High-Fidelity Polymer Glass Transition Simulations
topic Materials Science
url https://arxiv.org/abs/2601.17137