Two‐Dimensional Infrared Spectroscopy Reveals the Presence of a Bridging CO Ligand in Two Catalytic Intermediates of [FeFe] Hydrogenase

C Cornelius C. M. Bernitzky (Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany) M Mathesh Vaithiyanathan (Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany) M Manon T. Lachmann (School of Chemistry and Leicester Institute for Structural and Chemical Biology University of Leicester Leicester UK) I Igor V. Sazanovich G Gregory M. Greetham (Central Laser Facility, Research Complex at Harwell, STFC, Rutherford Appleton Laboratory, Harwell Campus, Oxfordshire, Didcot OX11 0QX, U.K.) P Patricia Rodríguez‐Maciá (School of Chemistry and Leicester Institute for Structural and Chemical Biology University of Leicester Leicester UK) J James A. Birrell (School of Life Science, University of Essex) M Marius Horch (Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany)

Abstract

ABSTRACT [FeFe] hydrogenases are highly active, reversible enzymes for the interconversion of hydrogen with protons and electrons. Their active site H‐cluster consists of a canonical [4Fe‐4S] cluster covalently linked to a unique [2Fe] H centre. Their catalytic mechanism has been studied extensively, but several details remain disputed, and two rival models exist in the literature. One crucial difference between these models is the structure and catalytic relevance of two states named H red H + and H sred H + . In the first model, these states are catalytic intermediates containing a reduced [Fe(I)Fe(I)] H centre and a bridging CO ligand (µCO), while in the second model they are inactive states containing an oxidised [Fe(II)Fe(II)] H site and a bridging hydride ligand (µH − ). The second proposal was initially based on the lack of a prominent absorption peak attributed to a µCO ligand in the infrared (IR) spectra of both states. Here, we provide evidence for the presence of a µCO ligand in the H red H + and H sred H + states using two‐dimensional (2D) IR spectroscopy, firmly establishing the structure of these states as [Fe(I)Fe(I)] H with a µCO ligand. The results suggest that these states are catalytically relevant intermediates with crucial implications for understanding hydrogen conversion in nature and designing new synthetic catalysts.

Article Details

Volume / Issue Vol. 65, Issue 21
Published May 18, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

C

Cornelius C. M. Bernitzky

Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany

M

Mathesh Vaithiyanathan

Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany

M

Manon T. Lachmann

School of Chemistry and Leicester Institute for Structural and Chemical Biology University of Leicester Leicester UK

I

Igor V. Sazanovich

G

Gregory M. Greetham

Central Laser Facility, Research Complex at Harwell, STFC, Rutherford Appleton Laboratory, Harwell Campus, Oxfordshire, Didcot OX11 0QX, U.K.

P

Patricia Rodríguez‐Maciá

School of Chemistry and Leicester Institute for Structural and Chemical Biology University of Leicester Leicester UK

J

James A. Birrell

School of Life Science, University of Essex

M

Marius Horch

Department of Physics, Ultrafast Dynamics in Catalysis Freie Universität Berlin Berlin Germany