Cerium oxide catalyzed disproportionation of hydrogen peroxide: a closer look at the reaction intermediate

Author:

Finocchiaro Giusy12ORCID,Ju Xiaohui3ORCID,Mezghrani Braham1,Berret Jean‐François1ORCID

Affiliation:

1. Université Paris Cité, CNRS Matière et systèmes complexes 75013 Paris France

2. Institute of Photonics and Electronics of the Czech Academy of Sciences Chaberská 1014/57 182 51 Prague Czech Republic

3. Center for Nanorobotics and Machine Intelligence Department of Chemistry and Biochemistry Mendel University in Brno Zemedelska 1 613 00 Brno Czech Republic

Abstract

AbstractCerium oxide nanoparticles (CNPs) have recently gained increasing interest as redox enzyme‐mimetics to scavenge the intracellular excess of reactive oxygen species, including hydrogen peroxide (H2O2). Despite the extensive exploration, there remains a notable discrepancy regarding the interpretation of observed redshift of UV‐Visible spectroscopy due to H2O2 addition and the catalase‐mimicking mechanism of CNPs. To address this question, we investigated the reaction mechanism by taking a closer look at the reaction intermediate during the catalase mimicking reaction. In this study, we present evidence demonstrating that in aqueous solutions, H2O2 adsorption at CNP surface triggers the formation of stable intermediates known as cerium‐peroxo (Ce‐O22−) and/or cerium‐hydroperoxo (Ce‐OOH) complexes as resolved by Raman scattering and UV‐Visible spectroscopy. Polymer coating presents steric hinderance for H2O2 accessibility to the solid‐liquid interface limiting further intermediate formation. We demonstrate in depth that the catalytic reactivity of CNPs in the H2O2 disproportionation reaction increases with the Ce(III)‐fraction and decreases in the presence of polymer coatings. The developed approach using UV‐Visible spectroscopy for the characterization of the surface peroxide species can potentially serve as a foundation for determining the catalytic reactivity of CNPs in the disproportionation of H2O2.

Funder

Agence Nationale de la Recherche

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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