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Automated Assembly Modelling of Metal‐Organic Polyhedra

Assembly modelling has been achieved in knowledge AI systems for the automated inference of new and rational metal‐organic polyhedra (J. Am. Chem. Soc. 2022, 144, 26, 11713–11728).In this work, we… Click to show full abstract

Assembly modelling has been achieved in knowledge AI systems for the automated inference of new and rational metal‐organic polyhedra (J. Am. Chem. Soc. 2022, 144, 26, 11713–11728).In this work, we implemented an algorithm and data structure that extends the process of assembly modelling to the automated generation of structural information about metal‐organic polyhedra (MOPs), enabling automation of computational approaches to analyse trends in cavity and pore sizing. Distinct from string‐based tools for purely organic cages, our workflow positions inorganic, organic, and hybrid CBUs directly in 3‐D and outputs geometries suitable for higher‐level geometry optimisation calculations in one step. The structural geometries obtained from this work are semantically integrated as part of The World Avatar', a dynamic knowledge ecosystem.

Keywords: assembly modelling; organic polyhedra; metal organic; automated assembly

Journal Title: European Journal of Inorganic Chemistry
Year Published: 2025

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