Covalent Control of Excitonic Interactions in Perylenediimide Trimers: A Computational Study.

Khanna, Ajay; Olivier, Jean-Hubert; Fernandez-Alberti, Sebastian; Tretiak, Sergei · Nano Lett · 2026

basic_science · Level V

Where this comes from

Abstract

Covalently tethering chromophores is an emerging strategy to control the structure and function of supramolecular aggregates for organic electronic applications. In this study, we employ first-principles calculations to elucidate structure-property relationships in three perylenediimide (PDI) trimer systems: a noncovalent assembly (u-PDI<sub>3</sub>), a stapled assembly (t-PDI<sub>3</sub>), and a folded (foldamer) assembly (s-PDI<sub>3</sub>) in aqueous solvent. Our results show how tethering controls the interchromophore geometry, particularly twist angles and slip displacements, which determine electronic coupling patterns. The t-PDI<sub>3</sub> system enforces symmetric cofacial alignment with small twist angles, producing high charge-transfer (CT) character across low-lying excited states, strong coupling (0.16-0.17 eV), and the largest exciton bandwidth. In contrast, u-PDI<sub>3</sub> features varying electronic transition character and coupling heterogeneity (0.07-0.15 eV), while s-PDI<sub>3</sub> has uniform CT character with moderate coupling strength (0.10-0.14 eV). The findings highlight how covalent tethering can be engineered to tune excitonic and CT properties in π-stacked molecular aggregates.