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Machine Learning Interatomic Potentials for Modeling Framework Flexibility and Water Uptake in NbOFFIVE-1-Ni Metal–Organic Framework

  • Xijun Wang
  • , Xiaoliang Wang
  • , Xiaoyi Zhang
  • , Zhao Li
  • , Jiayang Liu
  • , Faramarz Joodaki
  • , Kaihang Shi
  • , Filip Formalik
  • , Omar K. Farha
  • , Daniela Kohen
  • , Randall Q. Snurr
  • Northwestern University
  • Wrocław University of Science and Technology
  • Carleton College

Research output: Contribution to journalArticlepeer-review

Abstract

Metal–organic frameworks (MOFs), with their distinctive porous structures and tunable chemical properties, have shown immense promise in the separation and storage of gases. Currently, the accurate simulation of their adsorptive properties remains challenging, especially for systems where the molecules fit very tightly into the pores. Traditional simulation methods often approximate the frameworks as rigid and do not account for the framework flexibility seen in materials such as NbOFFIVE-1-Ni. First-principles molecular dynamics (FPMD) simulations offer the desired accuracy in modeling this flexibility but are limited by their extensive computational demands, rendering them impractical for long simulations. Conversely, classical force field-based simulations offer computational efficiency but lack the necessary accuracy. To break this accuracy-efficiency trade-off, we have developed machine learning interatomic potentials trained on energies and forces from FPMD to model the framework flexibility of NbOFFIVE-1-Ni in the presence of water over nanosecond time scales. Furthermore, by integrating MLIP-driven molecular dynamics (MLIP-MD) with grand canonical Monte Carlo (GCMC) simulations, we further incorporated framework flexibility into adsorption predictions, yielding water adsorption isotherms that better align with experimental data compared to those of conventional GCMC simulations. These advances offer new opportunities for the design and optimization of MOFs in gas storage and separation applications.

Original languageEnglish
Pages (from-to)2833-2846
Number of pages14
JournalJournal of Physical Chemistry C
Volume130
Issue number7
DOIs
StatePublished - Feb 19 2026

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