Titelangaben
    
    Fornacon-Wood, Christoph ; Steiner, Luca ; Xu, Chengzhang ; Paulus, Beate ; Plajer, Alex:
Recoverable Fluorination Accelerates Ring-Opening Copolymerisation and Enables Post-Polymerisation-Modification of Polyesters.
  
   
    
    In: Angewandte Chemie International Edition.
      
      (20 Oktober 2025)
      .
    
     - e202515104.
    
ISSN 1521-3773
    
    
      
DOI: https://doi.org/10.1002/anie.202515104
    
    
    
     
  
  
Angaben zu Projekten
| Projekttitel: | Offizieller Projekttitel Projekt-ID SFB 1357: MIKROPLASTIK – Gesetzmäßigkeiten der Bildung, des Transports, des physikalisch-chemischen Verhaltens sowie der biologischen Effekte: Von Modell- zu komplexen Systemen als Grundlage neuer Lösungsansätze 391977956 SFB 1349: Fluor-Spezifische Wechselwirkungen: Grundlagen und Anwendungen 387284271 | 
|---|---|
| Projektfinanzierung: | Deutsche Forschungsgemeinschaft | 
Abstract
Abstract Fluorination of polymers is a powerful strategy to enhance chemical or material properties yet integrating these benefits into degradable polymers remains underexplored. Here, we report a new class of fluorinated polyesters synthesized via ring-opening copolymerisation of pentafluoro styrene oxide with phthalic anhydride. The pendant C6F5 groups accelerate catalysis through fluorine-specific π-stacking interactions and improve obtained molecular weights compared to the non-fluorinated variant giving access to high weight materials (Mn,max. > 100 kg mol−1) with thermal and mechanical properties competitive with commodity plastics. These C6F5 groups then act as reactive handles in the material for efficient post-polymerisation modification (PPM) in solution, allowing fine-tuning of thermal, mechanical, optical, and solubility properties. PPM can even be performed on material surfaces, films and fibres can be selectively modified without dissolution. Lastly, degradation enables quantitative recovery of fluorine centres as sodium fluoride, offering a sustainable end-of-life option for the incorporated fluorine. Our work demonstrates how targeted fluorination of degradable polyesters can simultaneously enhance catalysis and unlock advanced material functionality.
 
        
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