Application of Inverse Design Approaches to the Discovery of Nonlinear Optical Switches

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Abstract

Molecular switches, in which a stimulus induces a large and reversible change in molecular properties, are of significant interest in the domain of photonics. Due to their commutable redox states with distinct nonlinear optical (NLO) properties, hexaphyrins have emerged as a novel platform for multistate switches in nanoelectronics. In this study, we employ an inverse design algorithm to find functionalized 26R→28R redox switches with maximal (Formula presented.) contrast. We focus on the role of core modifications, since a synergistic effect with meso-substitutions was recently found for the 30R-based switch. In contrast to these findings, the inverse design optima and subsequent database analysis of 26R-based switches confirm that core modifications are generally not favored when high NLO contrasts are targeted. Moreover, while push–pull combinations enhance the NLO contrast for both redox switches, they prefer a different arrangement in terms of electron-donating and electron-withdrawing functional groups. Finally, we aim at designing a three-state 26R→28R→ 30R switch with a similar NLO response for both ON states. Even though our best-performing three-state switch follows the design rules of the 30R-based component, our chemical compound space plots show that well-performing three-state switches can be found in regions shared by high-responsive 26R and 30R structures.

Original languageEnglish
Article number7371
Number of pages21
JournalMolecules
Volume28
Issue number21
DOIs
Publication statusPublished - 31 Oct 2023

Bibliographical note

Funding Information:
F.D.V. and M.A. wish to thank the VUB for the Strategic Research Program awarded to the ALGC research group. E.D. thanks the Fund for Scientific Research-Flanders (FWO-11E0321N) for financial support. In addition, E.D. thanks Michiel Jacobs for brainstorming about the visualization of the t-SNE plots of the chemical space. The resources and services used in this work were provided by the VSC (Flemish Super-computer Center), funded by the Research Foundation—Flanders (FWO) and the Flemish Government.

Publisher Copyright:
© 2023 by the authors.

Keywords

  • chemical compound space; inverse design; multistate switches; nonlinear optical properties; structure–property relationships

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