Carboxylation of Acetylene without Salt Waste: Green Synthesis of C4 Chemicals Enabled by a CO2‐Pressure Induced Acidity Switch

Author:

van Lingen Tim1ORCID,Bragoni Valentina1,Dyga Marco1ORCID,Exner Benjamin1,Schick Daniel2ORCID,Held Christoph2ORCID,Sadowski Gabriele2ORCID,Gooßen Lukas J.1ORCID

Affiliation:

1. Evonik Chair of Organic Chemistry Ruhr-Universität Bochum Universitätsstr. 150 44801 Bochum Germany

2. Laboratory of Thermodynamics Department of Biochemical and Chemical Engineering TU Dortmund University Emil-Figge Str. 70 44277 Dortmund Germany

Abstract

AbstractThe inherent formation of salt waste in C−H carboxylations is a key obstacle precluding the utilization of CO2 as C1 building block in the industrial synthesis of base chemicals. This challenge is addressed in a circular process for the production of the C4 base chemical dimethyl succinate from CO2 and acetylene. At moderate CO2 pressures, acetylene is doubly carboxylated in the presence of cesium carbonate. Hydrogenation of the C−C triple bond stabilizes the product against decarboxylation. By increasing the CO2 pressure to 70 bar, the medium is reversibly acidified, allowing an esterification of the succinate salt with methanol. The cesium base and the hydrogenation catalyst are regenerated and can be reused. This provides the proof of concept for a salt‐free route to C4 chemicals from biogas (CH4/CO2). The origin of this reversible acidity switch and the critical roles of the cesium base and the NMP/MeOH solvents were elucidated by thermodynamic modeling.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Chemistry,Catalysis

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