Real-space observation of the dissociation of a transition metal complex and its concurrent energy redistribution

A Aviad Schori E Elisa Biasin A Ambar Banerjee (Research Institute for Sustainable Energy (RISE)) S Sébastien Boutet P Philip H. Bucksbaum S Sergio Carbajo K Kelly J. Gaffney (Stanford PULSE Institute, SLAC National Accelerator Laboratory) J James M. Glownia R Robert Hartsock K Kathryn Ledbetter (Stanford PULSE Institute, SLAC National Accelerator Laboratory) A Andreas Kaldun J Jason E. Koglin K Kristjan Kunnus T Thomas J. Lane M Mengning Liang (Linac Coherent Light Source, SLAC National Accelerator Laboratory 5 , 2575 Sand Hill Road, Menlo Park, California 94025,) M Michael P. Minitti (Linac Coherent Light Source, SLAC National Accelerator Laboratory 5 , 2575 Sand Hill Road, Menlo Park, California 94025,) J Jordan T. O’Neal R Robert M. Parrish F Frédéric Poitevin J Jennifer M. Ruddock S Silke Nelson B Brian Stankus P Peter M. Weber (Department of Chemistry) T Thomas J. A. Wolf (Stanford PULSE Institute) M Michael Odelius (Department of Physics) A Adi Natan

Abstract

Abstract Mechanistic insights into photodissociation dynamics of transition metal carbonyls, like Fe(CO)5, are fundamental for understanding active catalytic intermediates. Although extensively studied, the structural dynamics of these systems remain elusive. Using ultrafast X-ray scattering, we uncover the photochemistry of Fe(CO)5 in real space and time, observing synchronous oscillations in atomic pair distances, followed by a prompt rotating CO release preferentially in the axial direction. This behavior aligns with simulations, reflecting the interplay between the axial Fe-C distances’ potential energy landscape and non-adiabatic transitions between metal-to-ligand charge-transfer states. Additionally, we characterize a secondary delayed CO release associated with a reduction of Fe-C steady state distances and structural dynamics of the formed Fe(CO)4. Our results quantify energy redistribution across vibration, rotation, and translation degrees of freedom, offering a microscopic view of complex structural dynamics, enhancing our grasp on Fe(CO)5 photodissociation, and advancing our understanding of transition metal catalytic systems.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 22, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (26)

A

Aviad Schori

E

Elisa Biasin

A

Ambar Banerjee

Research Institute for Sustainable Energy (RISE)

S

Sébastien Boutet

P

Philip H. Bucksbaum

S

Sergio Carbajo

K

Kelly J. Gaffney

Stanford PULSE Institute, SLAC National Accelerator Laboratory

J

James M. Glownia

R

Robert Hartsock

K

Kathryn Ledbetter

Stanford PULSE Institute, SLAC National Accelerator Laboratory

A

Andreas Kaldun

J

Jason E. Koglin

K

Kristjan Kunnus

T

Thomas J. Lane

M

Mengning Liang

Linac Coherent Light Source, SLAC National Accelerator Laboratory 5 , 2575 Sand Hill Road, Menlo Park, California 94025,

M

Michael P. Minitti

Linac Coherent Light Source, SLAC National Accelerator Laboratory 5 , 2575 Sand Hill Road, Menlo Park, California 94025,

J

Jordan T. O’Neal

R

Robert M. Parrish

F

Frédéric Poitevin

J

Jennifer M. Ruddock

S

Silke Nelson

B

Brian Stankus

P

Peter M. Weber

Department of Chemistry

T

Thomas J. A. Wolf

Stanford PULSE Institute

M

Michael Odelius

Department of Physics

A

Adi Natan