A Mechanochemical Kolbe–Schmitt Reaction: Catechol Carboxylation Provides Building Blocks for Renewable Plasticizers

D Dries De Vos (Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium) V Victoria S. Pfennig (Institute of Organic Chemistry RWTH Aachen University Aachen Germany) A Arno Goddé (Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium) R Robby Vroemans (Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium) T Tobias Krückel (Institute of Organic Chemistry RWTH Aachen University Aachen Germany) N Nicole Marcinkowska (Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany) E Ettore Bartalucci (Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany) T Thomas Wiegand (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany) C Carsten Bolm (Institute of Organic Chemistry RWTH Aachen University Aachen Germany) B Bert U. W. Maes (Organic Synthesis Division, Department of Chemistry, University of Antwerp, Groenenborgerlaan 171, Antwerp 2020, Belgium)

Abstract

ABSTRACT Catechol, an important aromatic platform molecule which can be derived from biomass, was carboxylated by mechanochemical Kolbe–Schmitt reaction of disodium catecholate with CO 2 , providing a mixture of mono‐ and dicarboxylated catechol derivatives. While classical protocols require harsh reaction conditions, involving a high temperature and/or CO 2 pressure, a mild ball milling method was developed. This represents the first mechanochemical Kolbe–Schmitt reaction featuring a low CO 2 pressure and reactivity at room temperature. From the individual catechol‐based mono‐ and dicarboxylic acid reaction products, a library of novel renewable plasticizers was synthesized through esterification of the carboxylic acid functionalities and O ‐acylation of the phenolic hydroxy groups. The resulting esters were evaluated in poly(vinylchloride) (PVC) and poly(lactic acid) (PLA), revealing plasticizing efficiencies competitive to benchmark commercial plasticizers. These efficiencies were maintained when the best performing ester substitution pattern was installed on the ball mill‐derived mixture of mono‐ and dicarboxylated catechols, making resource intensive separation (e.g. chromatographic separation) of these ortho ‐dihydroxybenzene(di)carboxylic acids redundant.

Article Details

Volume / Issue Vol. 65, Issue 12
Published March 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

D

Dries De Vos

Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium

V

Victoria S. Pfennig

Institute of Organic Chemistry RWTH Aachen University Aachen Germany

A

Arno Goddé

Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium

R

Robby Vroemans

Division of Organic Synthesis Department of Chemistry University of Antwerp Antwerp Belgium

T

Tobias Krückel

Institute of Organic Chemistry RWTH Aachen University Aachen Germany

N

Nicole Marcinkowska

Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany

E

Ettore Bartalucci

Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany

T

Thomas Wiegand

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany

C

Carsten Bolm

Institute of Organic Chemistry RWTH Aachen University Aachen Germany

B

Bert U. W. Maes

Organic Synthesis Division, Department of Chemistry, University of Antwerp, Groenenborgerlaan 171, Antwerp 2020, Belgium