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Resolving the Mechanism for H2O2 Decomposition over Zr(IV)-Substituted Lindqvist Tungstate: Evidence of Singlet Oxygen Intermediacy Full article

Journal ACS Catalysis
ISSN: 2155-5435
Output data Year: 2023, Volume: 13, Number: 15, Pages: 10324-10339 Pages count : 16 DOI: 10.1021/acscatal.3c02416
Tags DFT; hydrogen peroxide decomposition; Lindqvist tungstate; singlet oxygen; zirconium
Authors Maksimchuk Nataliya V. 1 , Puiggalí-Jou Jordi 2 , Zalomaeva Olga V. 1 , Larionov Kirill P. 1 , Evtushok Vasilii Yu. 1 , Soshnikov Igor E. 1 , Solé-Daura Albert 2 , Kholdeeva Oxana A. 1 , Poblet Josep M. 2 , Carbó Jorge J. 2
Affiliations
1 Boreskov Institute of Catalysis, Novosibirsk 630090, Russia
2 Departament de Química Física i Inorganica, ̀Universitat Rovira i Virgili, 43005 Tarragona, Spain

Funding (5)

1 Ministry of Science and Higher Education of the Russian Federation 0239-2021-0009
2 Ministry of Economic Affairs and Digital Transformation PID2021-128128NB-I00
3 Ministry of Science and Innovation PID2020-112762GB-I00
4 Government of Catalonia 2021SGR00110
5 Spain, Ministry of Science, Innovation and Universities
European Union

Abstract: The decomposition of hydrogen peroxide (H2O2) is the main undesired side reaction in catalytic oxidation processes of industrial interest that make use of H2O2 as a terminal oxidant, such as the epoxidation of alkenes. However, the mechanism responsible for this reaction is still poorly understood, thus hindering the development of design rules to maximize the efficiency of catalytic oxidations in terms of product selectivity and oxidant utilization efficiency. Here, we thoroughly investigated the H2O2 decomposition mechanism using a Zr-monosubstituted dimeric Lindqvist tungstate, (Bu4N)6[{W5O18Zr(μ-OH)}2] ({ZrW5}2), which revealed high activity for this reaction in acetonitrile. The mechanism of the {ZrW5}2-catalyzed H2O2 degradation in the absence of an organic substrate was investigated using kinetic, spectroscopic, and computational tools. The reaction is first order in the Zr catalyst and shows saturation behavior with increasing H2O2 concentration. The apparent activation energy is 11.5 kcal·mol–1, which is significantly lower than the values previously found for Ti- and Nb-substituted Lindqvist tungstates (14.6 and 16.7 kcal·mol–1, respectively). EPR spectroscopic studies indicated the formation of superoxide radicals, while EPR with a specific singlet oxygen trap, 2,2,6,6-tetramethylpiperidone (4-oxo-TEMP), revealed the generation of 1O2. The interaction of test substrates, α-terpinene and tetramethylethylene, with H2O2 in the presence of {ZrW5}2 corroborated the formation of products typical of the oxidation processes that engage 1O2 (endoperoxide ascaridole and 2,3-dimethyl-3-butene-2-hydroperoxide, respectively). While radical scavengers tBuOH and p-benzoquinone produced no effect on the peroxide product yield, the addition of 4-oxo-TEMP significantly reduced it. After optimization of the reaction conditions, a 90% yield of ascaridole was attained. DFT calculations provided an atomistic description of the H2O2 decomposition mechanism by Zr-substituted Lindqvist tungstate catalysts. Calculations showed that the reaction proceeds through a Zr-trioxidane [Zr-η2-OO(OH)] key intermediate, whose formation is the rate-determining step. The Zr-substituted POM activates heterolytically a first H2O2 molecule to generate a Zr-peroxo species, which attacks nucleophilically to a second H2O2, causing its heterolytic O–O cleavage to yield the Zr-trioxidane complex. In agreement with spectroscopic and kinetic studies, the lowest-energy pathway involves dimeric Zr species and an inner-sphere mechanism. Still, we also found monomeric inner- and outer-sphere pathways that are close in energy and could coexist with the dimeric one. The highly reactive Zr-trioxidane intermediate can evolve heterolytically to release singlet oxygen and also decompose homolytically, producing superoxide as the predominant radical species. For H2O2 decomposition by Ti- and Nb-substituted POMs, we also propose the formation of the TM-trioxidane key intermediate, finding good agreement with the observed trends in apparent activation energies.
Cite: Maksimchuk N.V. , Puiggalí-Jou J. , Zalomaeva O.V. , Larionov K.P. , Evtushok V.Y. , Soshnikov I.E. , Solé-Daura A. , Kholdeeva O.A. , Poblet J.M. , Carbó J.J.
Resolving the Mechanism for H2O2 Decomposition over Zr(IV)-Substituted Lindqvist Tungstate: Evidence of Singlet Oxygen Intermediacy
ACS Catalysis. 2023. V.13. N15. P.10324-10339. DOI: 10.1021/acscatal.3c02416 WOS Scopus РИНЦ AN PMID OpenAlex
Dates:
Submitted: May 29, 2023
Accepted: Jul 4, 2023
Published online: Jul 24, 2023
Published print: Aug 4, 2023
Identifiers:
Web of science: WOS:001034971500001
Scopus: 2-s2.0-85167895386
Elibrary: 56174331
Chemical Abstracts: 2023:1516156
PMID: 37560188
OpenAlex: W4385197469
Citing:
DB Citing
Web of science 16
OpenAlex 20
Elibrary 11
Scopus 20
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