Carboxylic acid induced restructuring of the Fe3O4(001) surface

J José J. Ortiz-Garcia (Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,) B Benjamin A. Jackson (Institute for Integrated Catalysis) M Marcus A. Sharp (Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,) P Peter S. Rice (Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,) M Mal-Soon Lee (Institute for Integrated Catalysis) Z Zbynek Novotny (Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 3 , Richland, Washington 99352,) Z Zdenek Dohnálek (Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 3 , Richland, Washington 99352,)

Abstract

The redox properties of Fe3O4 surfaces are central to many catalytic processes and enable dynamic, reduction-induced morphological restructuring during reactions. Here, we investigate the structural changes of the Fe3O4(001) surface during the decomposition of formic and acetic acids using scanning tunneling microscopy, X-ray photoelectron spectroscopy, and density functional theory (DFT) calculations. Both acids readily deprotonate, forming ordered carboxylate overlayers on the surface. Product formation pathways involve the removal of lattice oxygen, resulting in extensive surface restructuring. For formic acid, only a modest level of surface oxygen removal (∼3%) is observed, resulting in elongated pits along the octahedral Fe rows and exhibiting an aspect ratio of ∼3. In contrast, acetic acid induces more extensive reduction, with the removal of ∼20% of surface oxygen, yielding significantly larger pits while maintaining a similar aspect ratio. Repeated exposure to acetic acid further enlarges the pits, indicating preferential etching at step edges. DFT calculations reveal a mechanistic sequence in which lattice oxygen removal destabilizes adjacent Fe atoms, promoting their migration into the bulk and subsequent pit propagation and step edge formation. Together, these findings provide atomistic insights into the coupling between carboxylic acid conversion and oxide surface restructuring, underscoring the strong interplay between redox chemistry and morphological changes on catalytically active Fe3O4 surfaces.

Article Details

Volume / Issue Vol. 163, Issue 24
Published December 28, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (7)

J

José J. Ortiz-Garcia

Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,

B

Benjamin A. Jackson

Institute for Integrated Catalysis

M

Marcus A. Sharp

Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,

P

Peter S. Rice

Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 1 , Richland, Washington 99352,

M

Mal-Soon Lee

Institute for Integrated Catalysis

Z

Zbynek Novotny

Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 3 , Richland, Washington 99352,

Z

Zdenek Dohnálek

Physical and Computational Sciences Directorate and Institute for Integrated Catalysis, Pacific Northwest National Laboratory 3 , Richland, Washington 99352,