AI Article Synopsis

  • The study proposes a new nucleophilicity index based on Conceptual Density Functional Theory (CDFT), which assesses the reactivity of molecules using their electronic structure.
  • The index was tested on a range of pyrrolidine derivatives, leading to correlations between the theoretical predictions and actual experimental results regarding their nucleophilic behavior.
  • The research utilized DFT calculations with specific methods to optimize molecular geometry and included considerations for solvent effects and dispersion corrections, enhancing the accuracy of the findings.

Article Abstract

Context: Understanding and predicting the nucleophilic reactivity are paramount in elucidating organic chemical reactions and designing new synthetic pathways. In this study, we propose a nucleophilicity index within the framework of Conceptual Density Functional Theory (CDFT). Through rigorous theoretical formulations, we introduce an original quantum reactivity descriptor that captures the nucleophilic propensity of molecules based on their electronic structure and chemical environment. Subsequently, this proposed index is applied to a series of nucleophiles (pyrrolidines derivatives), spanning a diverse range of chemical functionalities. Our computational assessments reveal insightful correlations between the predicted nucleophilicity index and experimental observations of nucleophilic behavior. Thereby, they offer a promising avenue for advancing the understanding of organic reactivity and guiding synthetic efforts.

Methods: Experimentally, Mayr's experimental parameters accounting for nucleophilicity were selected for the pyrrolidines. This study used DFT calculations at the B3LYP/Aug-cc-pVTZ level of theory using the Gaussian 16 program. Geometry optimization was thus performed, and the methodology employed for the computation of quantum reactivity descriptor is presented. Solvent effect was also taken into account using IEFPCM, and empirical dispersion correction (GD3) was employed.

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Source
http://dx.doi.org/10.1007/s00894-024-06020-0DOI Listing

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