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April 25, 2026JACS Au2 citationsOpen Access

Aza6- and Aza7helicenes: Synthesis and Reversible Protonation-Induced Tuning of Photophysical and Chiroptical Properties

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FSFelix R. SchumannCPClotilde PhilippePWPascal Weisenburger

Key Points

  • This research aims to explore the synthesis and unique photophysical behavior of new azahelicenes.
  • Developed an efficient synthetic strategy using intramolecular ortho cyclization for azahelicenes.
  • Conducted enantiomeric separation through chiral HPLC to examine chiroptical properties.
  • Performed single-crystal X-ray diffraction and quantum-chemical calculations for analysis.
  • Synthesized azahelicenes showed fluorescence quantum yields up to 30% and protonation-induced red-shifts of 151 nm.
  • Chiroptical analysis indicated substantial responses, with glum factors reaching 3.5 × 10–3.
  • Protonation led to a reversible modulation of emission efficiency and chiroptical behavior through transition dipole moment reorientation.

Abstract

The development of molecular switches represents a versatile approach to the design of smart optical materials. Here, we report a protonation-induced reorientation of the transition dipole moments in a series of newly designed azahelicenes, establishing a distinctive molecular mechanism for chiroptical switching. To access these systems, we developed an efficient synthetic strategy based on intramolecular ortho cyclization, enabling a modular platform for carbazole- and phenanthridine-containing hexa- and heptahelicenes. The synthesized azahelicenes exhibit remarkable fluorescence properties, including quantum yields up to 30% and striking protonation-induced red-shifts of up to 151 nm (0.98 eV). Upon enantiomeric separation of representative derivatives by chiral HPLC, the azahelicenes show significant chiroptical activity with luminescence dissymmetry factors glum reaching 3.5 × 10–3. Detailed photophysical and quantum-chemical analysis reveals that protonation of the basic nitrogen centers triggers a reversible electronic reconfiguration, modulating both emission efficiency and chiroptical response. Notably, the mechanistic origin of this switching was traced back to a protonation-induced redirection of the transition dipole moments, as confirmed by our vector-based analysis. Supported by single-crystal X-ray diffraction and quantum-chemical calculations, this work provides a basis for developing new tunable azahelicenes.

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Cite This Study

Schumann et al. (2026) studied this question.

synapsesocial.com/papers/69ec598788ba6daa22dab518https://doi.org/10.1021/jacsau.6c00315
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