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Functionalized Crystalline N -Trimethyltriindoles: Counterintuitive Influence of Peripheral Substituents on Their Semiconducting Properties.

Sergio Gámez-ValenzuelaAngela Benito-HernándezMarcelo EcheverriEnrique Gutierrez-PueblaRocío Ponce OrtizMaria Carmen Ruiz DelgadoBerta Gómez-Lor
Published in: Molecules (Basel, Switzerland) (2022)
Three crystalline N -trimethyltriindoles endowed with different functionalities at 3, 8 and 13 positions (either unsubstituted or with three methoxy or three acetyl groups attached) are investigated, and clear correlations between the electronic nature of the substituents and their solid-state organization, electronic properties and semiconductor behavior are established. The three compounds give rise to similar columnar hexagonal crystalline structures; however, the insertion of electron-donor methoxy groups results in slightly shorter stacking distances when compared with the unsubstituted derivative, whereas the insertion of electron-withdrawing acetyl groups lowers the crystallinity of the system. Functionalization significantly affects hole mobilities with the triacetyl derivative showing the lowest mobility within the series in agreement with the lower degree of order. However, attaching three methoxy groups also results in lower hole mobility values in the OFETs (0.022 vs. 0.0014 cm 2 V -1 s -1 ) in spite of the shorter stacking distances. This counterintuitive behavior has been explained with the help of DFT calculations performed to rationalize the interplay between the intramolecular and intermolecular properties, which point to lower transfer integrals in the trimethoxy derivative due to the HOMO wave function extension over the peripheral methoxy groups. The results of this study provide useful insights into how peripheral substituents influence the fundamental charge transport parameters of chemically modified triindole platforms of fundamental importance to design new derivatives with improved semiconducting performance.
Keyphrases
  • room temperature
  • solar cells
  • solid state
  • density functional theory
  • molecular dynamics
  • mass spectrometry
  • quantum dots
  • high resolution
  • energy transfer
  • ionic liquid
  • atomic force microscopy