Molecular Field Analysis in Half-Titanocene Complexes: Computational Study towards Data-Driven in silico Optimization of Single-Site Olefin Polymerization Catalysts

15 February 2024, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

We performed molecular field analysis using computed data of half-titanocene-catalyzed olefin polymerization. The activation energies of ethylene insertion, propylene insertion, and the energy differences between ethylene insertion and β-hydrogen transfer calculated with DFT methods were employed as target variables for regression analysis. Molecular fields (voxel data) calculated from corresponding transition-state structures were used as descriptors. The structural information visualized based on the molecular field-based regression analysis provided a catalyst design guideline. A phosphinimide catalyst designed following the guideline showed enhanced computed free energy values. According to a previous report, the designed catalyst exhibited higher activity and polymer molecular weight in ethylene polymerization compared to a high performance phosphinimide catalyst in the training samples.

Supplementary materials

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Supporting information
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Results of regression analysis and DFT calculations
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Coordinates
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Input/output files and coordinates of TS structures
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