Predicting the Stability of Base‐mediated C─H Carboxylation Adducts Using Data Science Tools

M Maike Eckhoff (Department of Chemistry) S Shubham Deolka (Department of Chemistry) A Aleria Garcia‐Roca (University of Utah Department of Chemistry Salt Lake City Utah 84112 USA) L Lilly Meynberg (TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany) L Liudmila Seidel (TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany) M Matthew S. Sigman J Jonny Proppe (TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany)

Abstract

Abstract Base‐mediated C–H carboxylation is a versatile pathway for utilizing carbon dioxide (CO 2 ) as a C1 building block in organic synthesis. However, CO 2 constitutes a notorious thermodynamic sink, which restricts this approach to activated or intrinsically reactive nucleophiles. To qualitatively assess the stability of CO 2 adducts, we present a computational approach that integrates quantum chemistry with statistical modeling to build a predictive workflow. The target property is the CO 2 affinity, specifically the negative Gibbs free reaction energy. This predictive workflow has been applied to 60 novel carbon‐centered nucleophiles, suggesting reactions that yield stable carboxylation adducts. The results have been validated through experimental methods for five carbanions, which include three stable and two unstable adducts in DMSO according to our predictions. In addition, we examined two further carbanions that were suggested to form stable CO 2 adducts in DMSO, to further assess the experimental protocol and broaden its scope to structurally distinct motifs.

Article Details

Volume / Issue Vol. 65, Issue 2
Published January 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

M

Maike Eckhoff

Department of Chemistry

S

Shubham Deolka

Department of Chemistry

A

Aleria Garcia‐Roca

University of Utah Department of Chemistry Salt Lake City Utah 84112 USA

L

Lilly Meynberg

TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany

L

Liudmila Seidel

TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany

M

Matthew S. Sigman

J

Jonny Proppe

TU Braunschweig Institute of Physical and Theoretical Chemistry Gauss Str 17 38106 Braunschweig Germany