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Updated: Jun 7, 2025

On-line Analysis of Nitrogen Containing Compounds in Complex Hydrocarbon Matrixes
Published on: August 5, 2016
Machine Learned Potential Enables Molecular Dynamics Simulation to Predict the Experimental Branching Ratios in the
Pooja Sharma1, Prahlad Roy Chowdhury1, Amber Jain1
1Department of Chemistry, Indian Institute of Technology Bombay, Mumbai 400076, India.
Abstract:
This study employs a machine learning (ML) model using the Gaussian process regression algorithm to generate potential energy surfaces (PES) from density functional theory calculations, facilitating the investigation of photodissociation dynamics of nitroaromatic compounds, resulting in NO release. The experimentally observed trends in the slow-to-fast branching ratios of the NO moiety were captured by estimating the branching ratio between the two distinct reaction pathways, viz., roaming and oxaziridine mechanisms, calculated from molecular dynamics simulations performed on a reduced two-dimensional T1 surface. The qualitative agreement between the calculated and experimental results suggests that the mechanism dictating NO release is primarily governed by the dynamics on the T1 surface.
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