Tuning the electronic structure and SMSI by integrating trimetallic sites with defective ceria for the CO <sub>2</sub> reduction reaction

C Charvi Singhvi (Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai) G Gunjan Sharma (Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai) R Rishi Verma (Department of Chemical Sciences, Tata Institute of Fundamental Research) V Vinod K. Paidi (Experiments Division, European Synchrotron Radiation Facility) P Pieter Glatzel (ESRF, The European Synchrotron) P Paul Paciok (Ernst-Ruska Center for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich) V Vashishtha B. Patel (Department of Chemical Engineering, Indian Institute of Technology Bombay) O Ojus Mohan (Department of Chemical Engineering, Indian Institute of Technology Bombay) V Vivek Polshettiwar (Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai)

Abstract

Heterogeneous catalysts have emerged as a potential key for closing the carbon cycle by converting carbon dioxide (CO 2 ) into value-added chemicals. In this work, we report a highly active and stable ceria (CeO 2 )-based electronically tuned trimetallic catalyst for CO 2 to CO conversion. A unique distribution of electron density between the defective ceria support and the trimetallic nanoparticles (of Ni, Cu, Zn) was established by creating the strong metal support interaction (SMSI) between them. The catalyst showed CO productivity of 49,279 mmol g −1 h −1 at 650 °C. CO selectivity up to 99% and excellent stability (rate remained unchanged even after 100 h) stemmed from the synergistic interactions among Ni-Cu-Zn sites and their SMSI with the defective ceria support. High-energy-resolution fluorescence-detection X-ray absorption spectroscopy (HERFD-XAS) confirmed this SMSI, further corroborated by in situ electron energy loss spectroscopy (EELS) and density functional theory (DFT) simulations. The in situ studies (HERFD-XAS &amp; EELS) indicated the key role of oxygen vacancies of defective CeO 2 during catalysis. The in situ transmission electron microscopy (TEM) imaging under catalytic conditions visualized the movement and growth of active trimetallic sites, which completely stopped once SMSI was established. In situ FTIR (supported by DFT) provided a molecular-level understanding of the formation of various reaction intermediates and their conversion into products, which followed a complex coupling of direct dissociation and redox pathway assisted by hydrogen, simultaneously on different active sites. Thus, sophisticated manipulation of electronic properties of trimetallic sites and defect dynamics significantly enhanced catalytic performance during CO 2 to CO conversion.

Article Details

Volume / Issue Vol. 122, Issue 3
Published January 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

C

Charvi Singhvi

Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai

G

Gunjan Sharma

Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai

R

Rishi Verma

Department of Chemical Sciences, Tata Institute of Fundamental Research

V

Vinod K. Paidi

Experiments Division, European Synchrotron Radiation Facility

P

Pieter Glatzel

ESRF, The European Synchrotron

P

Paul Paciok

Ernst-Ruska Center for Microscopy and Spectroscopy with Electrons, Forschungszentrum Jülich

V

Vashishtha B. Patel

Department of Chemical Engineering, Indian Institute of Technology Bombay

O

Ojus Mohan

Department of Chemical Engineering, Indian Institute of Technology Bombay

V

Vivek Polshettiwar

Department of Chemical Sciences, Tata Institute of Fundamental Research Mumbai