Low Molecular Weight Multistate Photoswitches Based on Simple Norbornadiene‐Triazine Scaffolds

D Daniel Krappmann (Research Unit Signaling and Translation, Group Signaling and Immunity, Molecular Targets and Therapeutics Center, Helmholtz Munich) A Adrian J. Müller (Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, 69120 Heidelberg, Germany) E Erik J. Schulze (Department of Chemistry and Pharmacy Chair of Organic Chemistry II Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Straße 10 91058 Erlangen Germany) H Harald Maid (Department of Chemistry and Pharmacy Friedrich‐Alexander‐Universität ErlangenNürnberg NikolausFiebiger Straße 10 91058 Erlangen Germany) A Andreas Dreuw (Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, Heidelberg 69120, Germany) A Andreas Hirsch

Abstract

Abstract We have synthesized and characterized a series of simple norbornadiene(NBD)‐triazine architectures, including multistate photoswitches with unprecedentedly high information storage densities. The simple mono‐NBDs served as suitable model systems to investigate the underlying absorption and switching characteristics. To increase the complexity stepwise, a bis ‐NBD derivative with a symmetric substitution pattern was investigated next. By combining different NBD substituents with varying electron demands, two asymmetric compounds, one bis ‐NBD and one tris ‐NBD, were prepared and investigated. In the case of the tris ‐NBD, the selective switching of the individual NBD chromophores is hampered by the too closely related optical properties of all three NBD units. On the other hand, the asymmetric photoswitch system containing two NBD‐substituents fulfilled the requirements of a selectively addressable multistate system with an extremely high information storage density. Nearly all possible NBD/quadricyclane (QC) combinations could be realized here, including their reversible interconversion and the respective protonated forms. Quantum chemical calculations corroborated our experimental findings.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

D

Daniel Krappmann

Research Unit Signaling and Translation, Group Signaling and Immunity, Molecular Targets and Therapeutics Center, Helmholtz Munich

A

Adrian J. Müller

Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, 69120 Heidelberg, Germany

E

Erik J. Schulze

Department of Chemistry and Pharmacy Chair of Organic Chemistry II Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Straße 10 91058 Erlangen Germany

H

Harald Maid

Department of Chemistry and Pharmacy Friedrich‐Alexander‐Universität ErlangenNürnberg NikolausFiebiger Straße 10 91058 Erlangen Germany

A

Andreas Dreuw

Interdisciplinary Center for Scientific Computing, Heidelberg University, Im Neuenheimer Feld 205, Heidelberg 69120, Germany

A

Andreas Hirsch