Modulating Ce3+ Sites in Ce‐Zr Oxide Nanocatalysts through Protamine Biomineralization for Organophosphate Dephosphorylation

Author:

Jiang Junjie1,Peña Jhair1,Hadinata Lie William1,Yang Yuwei1,Thong Grace1,Wright Joshua2,Thomsen Lars3,Gallington Leighanne C.4,Scott Jason A.1,Bedford Nicholas M.1ORCID

Affiliation:

1. School of Chemical Engineering The University of New South Wales Sydney NSW 2052 Australia

2. Department of Physics Illinois Institute of Technology Chicago IL, 60616 United States

3. Australian Synchrotron Australian Nuclear Science and Technology Organisation Clayton VIC, 3168 Australia

4. X-ray Science Division Argonne National Laboratory Lemont IL, 60439 United States

Abstract

AbstractCatalytic is a crucial reaction for environmental detoxication of pesticides and neutralization of various molecules classified as chemical warfare agents. Herein, we report on a series of tunable Ce−Zr‐based metal oxides, (ZraCe1–aOx) prepared using a facile biomineralization technique, as catalysts for organophosphates dephosphorylation. Synchrotron scattering and spectroscopy methods showcase that ZraCe1–aOx catalysts are highly defective and exhibit an abundance of Ce3+ sites that promote oxygen vacancies needed for enhanced dephosphorylation reactions. The catalytic performance was assessed using a model para‐nitrophenyl phosphate reaction and showcases a strong dependence on Zr dopant concentration and subsequent tuning of the Ce3+/Ce4+ ratio. Analysis of synchrotron datasets allowed structure‐performance correlations between the Ce3+ concentration and associated oxygen vacancies, the dephosphorylation rate constant, and Zr concentration to be established, confirming that Ce3+ as active sites is positively correlated with the rate constant. We envision that similar biomineralization approaches can be used to fabricate Ce3+‐rich Ce−Zr oxide for environmental application in dephosphorylation and other hydrolysis reactions.

Funder

Fakultas Teknik Universitas Indonesia

University of New South Wales

Australian Government

Australian Synchrotron

Australian Nuclear Science and Technology Organisation

Publisher

Wiley

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