Benzoyl‐Xanthenoxanthenes: Versatile Chromophores for Light‐Engaging Applications

C Cristian De Luca (Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria) E El Czar Galleposo (Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria) R Rúben R. Ferreira (Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria) C Chiara Puccinelli (Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria) H Herwig Peterlik (Faculty Center for Nano Structure Research Faculty of Physics University of Vienna Wien 1090 Austria) P Pradip Kumar Mondal (Elettra – Sincrotrone Trieste, Basovizza Trieste Italy) L Laurens van Dam (Vienna Doctoral School in Chemistry University of Vienna Währinger Straße 42 Vienna 1090 Austria) J Johannes C. B. Dietschreit (Institute of Theoretical Chemistry, Faculty of Chemistry, University of Vienna , Währinger Straße 17, 1090 Vienna,) Y Yoshimichi Shimomura (Department of Chemical Science and Engineering Institute of Science Tokyo Tokyo 152‐8552 Japan) G Gen‐ichi Konishi (Department of Chemical Science and Engineering Institute of Science Tokyo Tokyo 152‐8552 Japan) D Davide Bonifazi

Abstract

Abstract In this work, we present a modular donor–acceptor strategy that produces oxidatively stable, benzoyl‐fused peri ‐xanthenoxanthene (PXX) ribbons with near‐infrared (NIR) emission and light‐harvesting properties. Benzoyl fusion at the pseudo‐peri positions, achieved through intramolecular Friedel–Crafts planarization, creates the first benzoyl‐functionalized PXX monomers, dimers, and trimers that exhibit deep red–NIR absorption and emission without significantly raising the HOMO level. The ribbons display strong, tunable absorption and fluorescence bands, with up to 63% of emission in the NIR and an NIR fluorescence quantum yield reaching 0.36 in solution. Lewis adducts formed between boron‐based Lewis acids and carbonyl acceptor sites further enhance the electron‐accepting nature of the ketones, producing pure NIR emission ( ≈ 0.15–0.16). Spectroelectrochemical investigations uncover reversible electrochromism and electrofluorochromism, allowing redox‐gated switching and NIR absorption signatures, useful for sensing and display technologies. When embedded in a nematic liquid crystal phase, the ribbons function as cascaded Förster resonance energy transfer (FRET) antennas, achieving near‐quantitative single‐step energy transfer ( FRET  = 0.97) and highly efficient two‐step transfer ( FRET  = 0.70), enabling directional energy funneling. Their complementary absorption broadens the excitation window to cover the entire visible spectrum, making them highly efficient panchromatic light‐harvesting materials.

Article Details

Volume / Issue Vol. 65, Issue 7
Published February 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

C

Cristian De Luca

Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria

E

El Czar Galleposo

Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria

R

Rúben R. Ferreira

Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria

C

Chiara Puccinelli

Institute of Organic Chemistry, Faculty of Chemistry University of Vienna Vienna 1090 Austria

H

Herwig Peterlik

Faculty Center for Nano Structure Research Faculty of Physics University of Vienna Wien 1090 Austria

P

Pradip Kumar Mondal

Elettra – Sincrotrone Trieste, Basovizza Trieste Italy

L

Laurens van Dam

Vienna Doctoral School in Chemistry University of Vienna Währinger Straße 42 Vienna 1090 Austria

J

Johannes C. B. Dietschreit

Institute of Theoretical Chemistry, Faculty of Chemistry, University of Vienna , Währinger Straße 17, 1090 Vienna,

Y

Yoshimichi Shimomura

Department of Chemical Science and Engineering Institute of Science Tokyo Tokyo 152‐8552 Japan

G

Gen‐ichi Konishi

Department of Chemical Science and Engineering Institute of Science Tokyo Tokyo 152‐8552 Japan

D

Davide Bonifazi