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Abstract

<jats:p>Ο€-Stacked radicals exhibit electronic properties that are highly sensitive to subtle changes in molecular packing, yet identifying which structural features control these interactions remains challenging. Here, we combine density functional theory calculations with chemically defined structural descriptors to quantify geometry–electronic structure relationships across 2,582 Ο€radical dimer configurations of five different polycyclic aromatic hydrocarbon (PAH) radical dimers. Extremely randomized trees and multilayer perceptron models predict fragment-orbital SOMO coupling, interaction energy, frontier-orbital separation, and the SOMO-SOMO interaction energy with test-set 𝑅! values of 0.94–0.98. Feature importance analysis separates two structural regimes: global Ο€-surface dimensions dominate frontier orbital variation and contribute to the interaction-energy scale, whereas local stacking registry and short CΒ·Β·Β·C contact networks are most strongly associated with radical–radical coupling and corrected spin-dependent interaction energy. Y-randomization and geometry-clustered validation support the robustness of these relationships. This framework provides an interpretable, geometry-based route for evaluating and prioritizing packing arrangements in Ο€-stacked radical dimers.</jats:p>

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Keywords

structural interaction energy Ο€stacked packing

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