Directional Second Sphere Effect on CO <sub>2</sub> Activation and Reduction by Iron Porphyrin in Aprotic and Protic Media

A Ashutosh Vishwakarma (CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France) S Sami Essid (CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France) S Sarah Bouery (CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France) R Régis Guillot (Institut de Chimie Moléculaire et des Matériaux d’Orsay, CNRS) B Bernard Boitrel (CNRS ISCR (Institut Des Sciences Chimiques De Rennes)‐UMR 6226 Univ Rennes Rennes France) P Philipp Gotico (Institute For Integrative Biology of the Cell CEA CNRS Université Paris‐Saclay Gif‐sur‐Yvette France) M Marie Sircoglou (CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France) Z Zakaria Halime (CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France)

Abstract

ABSTRACT The topological directionality of functional groups in the secondary coordination sphere (SCS) plays a decisive role in enzymatic small‐molecule activation but remains underexplored in synthetic systems. Here, we investigate how symmetry remodeling of a urea‐based SCS modulates electrocatalytic CO 2 ‐to‐CO reduction using two atropisomeric iron porphyrins, αβαβ ‐UrFe and α 2 β 2 ‐UrFe , which differ solely in the spatial arrangement of identical hydrogen‐bond donor groups. Switching from a face‐to‐face to an adjacent urea‐arms configuration enables unprecedented CO 2 ‐to‐CO conversion under strictly aprotic conditions, in the absence of Brønsted or Lewis acids. Combined electrochemical, spectroscopic, kinetic, and DFT studies reveal that the adjacent positioning of the urea arms weakens the stabilization of the initial [Fe─CO 2 ] intermediate but creates a more open and dynamically reorganizable SCS that permits insertion of a second CO 2 molecule as an oxygen‐atom acceptor, to yield CO and CO 3 2 ˉ. Under protic conditions, this improved active‐site accessibility, combined with a dissymmetrization of the activated CO 2 molecule, accelerates proton transfer, with CO 2 ‐to‐CO reduction reaching turnover frequency of up to 2.72 × 10 7 s −1 , among the highest reported for homogeneous catalysis. These results establish directional interactions within the SCS as powerful design strategy for boosting molecular catalysis.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 23, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

A

Ashutosh Vishwakarma

CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France

S

Sami Essid

CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France

S

Sarah Bouery

CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France

R

Régis Guillot

Institut de Chimie Moléculaire et des Matériaux d’Orsay, CNRS

B

Bernard Boitrel

CNRS ISCR (Institut Des Sciences Chimiques De Rennes)‐UMR 6226 Univ Rennes Rennes France

P

Philipp Gotico

Institute For Integrative Biology of the Cell CEA CNRS Université Paris‐Saclay Gif‐sur‐Yvette France

M

Marie Sircoglou

CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France

Z

Zakaria Halime

CNRS Institut De Chimie Moléculaire Et Des Matériaux d'Orsay Université Paris‐Saclay Orsay France