Advanced search
1 file | 11.67 MB Add to list

OGRe : optimal grid refinement protocol for accurate free energy surfaces and its application in proton hopping in zeolites and 2D COF stacking

Sander Borgmans (UGent) , Sven Rogge (UGent) , Louis Vanduyfhuys (UGent) and Veronique Van Speybroeck (UGent)
Author
Organization
Project
Abstract
While free energy surfaces are the crux of our understanding of many chemical and biological processes, their accuracy is generally unknown. Moreover, many developments to improve their accuracy are often complicated, limiting their general use. Luckily, several tools and guidelines are already in place to identify these shortcomings, but they are typically lacking in flexibility or fail to systematically determine how to improve the accuracy of the free energy calculation. To overcome these limitations, this work introduces OGRe, a Python package for optimal grid refinement in an arbitrary number of dimensions. OGRe is based on three metrics that gauge the confinement, consistency, and overlap of each simulation in a series of umbrella sampling (US) simulations, an enhanced sampling technique ubiquitously adopted to construct free energy surfaces for hindered processes. As these three metrics are fundamentally linked to the accuracy of the weighted histogram analysis method adopted to generate free energy surfaces from US simulations, they facilitate the systematic construction of accurate free energy profiles, where each metric is driven by a specific umbrella parameter. This allows for the derivation of a consistent and optimal collection of umbrellas for each simulation, largely independent of the initial values, thereby dramatically increasing the ease-of-use toward accurate free energy surfaces. As such, OGRe is particularly suited to determine complex free energy surfaces with large activation barriers and shallow minima, which underpin many physical and chemical transformations and hence to further our fundamental understanding of these processes.
Keywords
CONVERGENCE, LANDSCAPES, DYNAMICS

Downloads

  • borgmans-et-al-2023-ogre-optimal-grid-refinement-protocol-for-accurate-free-energy-surfaces-and-its-application-in.pdf
    • full text (Published version)
    • |
    • open access
    • |
    • PDF
    • |
    • 11.67 MB

Citation

Please use this url to cite or link to this publication:

MLA
Borgmans, Sander, et al. “OGRe : Optimal Grid Refinement Protocol for Accurate Free Energy Surfaces and Its Application in Proton Hopping in Zeolites and 2D COF Stacking.” JOURNAL OF CHEMICAL THEORY AND COMPUTATION, vol. 19, no. 24, 2023, pp. 9032–48, doi:10.1021/acs.jctc.3c01028.
APA
Borgmans, S., Rogge, S., Vanduyfhuys, L., & Van Speybroeck, V. (2023). OGRe : optimal grid refinement protocol for accurate free energy surfaces and its application in proton hopping in zeolites and 2D COF stacking. JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 19(24), 9032–9048. https://doi.org/10.1021/acs.jctc.3c01028
Chicago author-date
Borgmans, Sander, Sven Rogge, Louis Vanduyfhuys, and Veronique Van Speybroeck. 2023. “OGRe : Optimal Grid Refinement Protocol for Accurate Free Energy Surfaces and Its Application in Proton Hopping in Zeolites and 2D COF Stacking.” JOURNAL OF CHEMICAL THEORY AND COMPUTATION 19 (24): 9032–48. https://doi.org/10.1021/acs.jctc.3c01028.
Chicago author-date (all authors)
Borgmans, Sander, Sven Rogge, Louis Vanduyfhuys, and Veronique Van Speybroeck. 2023. “OGRe : Optimal Grid Refinement Protocol for Accurate Free Energy Surfaces and Its Application in Proton Hopping in Zeolites and 2D COF Stacking.” JOURNAL OF CHEMICAL THEORY AND COMPUTATION 19 (24): 9032–9048. doi:10.1021/acs.jctc.3c01028.
Vancouver
1.
Borgmans S, Rogge S, Vanduyfhuys L, Van Speybroeck V. OGRe : optimal grid refinement protocol for accurate free energy surfaces and its application in proton hopping in zeolites and 2D COF stacking. JOURNAL OF CHEMICAL THEORY AND COMPUTATION. 2023;19(24):9032–48.
IEEE
[1]
S. Borgmans, S. Rogge, L. Vanduyfhuys, and V. Van Speybroeck, “OGRe : optimal grid refinement protocol for accurate free energy surfaces and its application in proton hopping in zeolites and 2D COF stacking,” JOURNAL OF CHEMICAL THEORY AND COMPUTATION, vol. 19, no. 24, pp. 9032–9048, 2023.
@article{01HN0BB9SKV9VZDETM8HPTRVZ5,
  abstract     = {{While free energy surfaces are the crux of our understanding of many chemical and biological processes, their accuracy is generally unknown. Moreover, many developments to improve their accuracy are often complicated, limiting their general use. Luckily, several tools and guidelines are already in place to identify these shortcomings, but they are typically lacking in flexibility or fail to systematically determine how to improve the accuracy of the free energy calculation. To overcome these limitations, this work introduces OGRe, a Python package for optimal grid refinement in an arbitrary number of dimensions. OGRe is based on three metrics that gauge the confinement, consistency, and overlap of each simulation in a series of umbrella sampling (US) simulations, an enhanced sampling technique ubiquitously adopted to construct free energy surfaces for hindered processes. As these three metrics are fundamentally linked to the accuracy of the weighted histogram analysis method adopted to generate free energy surfaces from US simulations, they facilitate the systematic construction of accurate free energy profiles, where each metric is driven by a specific umbrella parameter. This allows for the derivation of a consistent and optimal collection of umbrellas for each simulation, largely independent of the initial values, thereby dramatically increasing the ease-of-use toward accurate free energy surfaces. As such, OGRe is particularly suited to determine complex free energy surfaces with large activation barriers and shallow minima, which underpin many physical and chemical transformations and hence to further our fundamental understanding of these processes.}},
  author       = {{Borgmans, Sander and Rogge, Sven and Vanduyfhuys, Louis and Van Speybroeck, Veronique}},
  issn         = {{1549-9618}},
  journal      = {{JOURNAL OF CHEMICAL THEORY AND COMPUTATION}},
  keywords     = {{CONVERGENCE,LANDSCAPES,DYNAMICS}},
  language     = {{eng}},
  number       = {{24}},
  pages        = {{9032--9048}},
  title        = {{OGRe : optimal grid refinement protocol for accurate free energy surfaces and its application in proton hopping in zeolites and 2D COF stacking}},
  url          = {{http://doi.org/10.1021/acs.jctc.3c01028}},
  volume       = {{19}},
  year         = {{2023}},
}

Altmetric
View in Altmetric
Web of Science
Times cited: