Dynamic Covalent Radical Recombination for the Assembly of Tuneable Responsive Porous Organic Cages

Y Yannic Hartmann (Institut für Organische Chemie und Makromolekulare Chemie Heinrich‐Heine‐Universität Düsseldorf Düsseldorf Germany) R Robert Oestreich (Institut für Anorganische Chemie und Strukturchemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany) Y Yuki Wada (Department of Chemistry, School of Science, Institute of Science Tokyo, 2-12-1 Ookayama, Meguro-ku, Tokyo 152-8550, Japan) P Philippe de Bary (Lehrstuhl für Bioanorganische Chemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany) M Masaki Kawano (Department of Chemistry) C Christoph Janiak (Institut für Anorganische Chemie und Strukturchemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany) B Bernd M. Schmidt

Abstract

ABSTRACT The construction of discrete organic cages via radical recombination offers a powerful yet underexplored route toward stimuli ‐responsive, C─C‐linked molecular architectures. Here, we introduce aryldicyanomethyl radical dynamic covalent chemistry as a general strategy for the controlled assembly of porous organic cages. Systematic variation of a single substituent governs both radical and σ‐bond stability as well as the resulting cage geometry, enabling precise, substituent‐dependent control over cage topology and responsiveness. A thiophenoxy‐substituted monomer S selectively affords a discrete Tri 2 dimer in 99% yield, whereas the N ‐methylaniline‐substituted analogue N forms the tetrahedral Tri 4 tetramer in 83% yield. N 4 possesses permanent porosity and pronounced selectivity for CO 2 and H 2 over CH 4 and N 2 , as confirmed by gas sorption experiments, arising from narrow pore apertures and strong host–guest interactions. Both cages display reversible mechano‐ and thermochromic behaviour. Moreover, the combination of a highly dynamic bond formation process with three‐dimensional preorganisation of the cage enables efficient self‐healing, which is markedly accelerated upon exposure to THF vapour. Collectively, these results establish radical recombination as an unexplored dynamic covalent motif for the synthesis of responsive organic cage architectures, enabling substituent‐dependent fine‐tuning of topology, stability, and material function through simple substituent modification.

Article Details

Volume / Issue Vol. 65, Issue 26
Published June 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Y

Yannic Hartmann

Institut für Organische Chemie und Makromolekulare Chemie Heinrich‐Heine‐Universität Düsseldorf Düsseldorf Germany

R

Robert Oestreich

Institut für Anorganische Chemie und Strukturchemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany

Y

Yuki Wada

Department of Chemistry, School of Science, Institute of Science Tokyo, 2-12-1 Ookayama, Meguro-ku, Tokyo 152-8550, Japan

P

Philippe de Bary

Lehrstuhl für Bioanorganische Chemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany

M

Masaki Kawano

Department of Chemistry

C

Christoph Janiak

Institut für Anorganische Chemie und Strukturchemie Heinrich‐Heine‐Universität Düsseldorf Universitätsstraße 1 Düsseldorf Germany

B

Bernd M. Schmidt