Tuning Reactivity of Zr-Substituted Keggin Phosphotungstate in Alkene Epoxidation through Balancing H2O2 Activation Pathways: Unusual Effect of Base

被引:7
|
作者
Maksimchuk, Nataliya V. [1 ]
Marikovskaya, Sofia M. [1 ,2 ]
Larionov, Kirill P. [1 ]
Antonov, Artem A. [1 ,2 ]
Shashkov, Mikhail V. [1 ]
Yanshole, Vadim V. [3 ]
Evtushok, Vasilii Yu. [1 ]
Kholdeeva, Oxana A. [1 ]
机构
[1] Boreskov Inst Catalysis, Novosibirsk 630090, Russia
[2] Novosibirsk State Univ, Novosibirsk 630090, Russia
[3] Int Tomog Ctr SB RAS, Novosibirsk 630090, Russia
基金
俄罗斯科学基金会;
关键词
SILANOL-FUNCTIONALIZED POLYOXOTUNGSTATES; ENVIRONMENTALLY BENIGN OXIDANTS; SILICA MIXED OXIDES; HYDROGEN-PEROXIDE; SELECTIVE OXIDATION; MESOPOROUS SILICAS; MOLECULAR-MODELS; BOND HYDROLYSIS; CATALYSIS; ZIRCONIUM;
D O I
10.1021/acs.inorgchem.3c02578
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The Zr-monosubstituted Keggin-type dimeric phosphotungstate (Bu4N)(8)[{PW11O39Zr(mu-OH)(H2O)}(2)] (1) efficiently catalyzes epoxidation of C=C bonds in various kinds of alkenes, including terminal ones, with aqueous H2O2 as oxidant. Less sterically hindered double bonds are preferably epoxidized despite their lower nucleophilicity. Basic additives (Bu4NOH) in the amount of 1 equiv per dimer 1 suppress H2O2 unproductive decomposition, increase substrate conversion, improve yield of heterolytic oxidation products and oxidant utilization efficiency, and also affect regioselectivity of epoxidation, enhancing oxygen transfer to sterically hindered electron-rich C=C bonds. Acid additives produce a reverse effect on the substrate conversion and H2O2 efficiency. The reaction mechanism was explored using a range of test substrates, kinetic, and spectroscopic tools. The opposite effects of acid and base additives on alkene epoxidation and H2O2 degradation have been rationalized in terms of their impact on hydrolysis of 1 to form monomeric species, [PW11O39Zr(OH)(H2O)(x)](4-) (1-M, x = 1 or 2), which favors H2O2 homolytic decomposition. The interaction of 1 with H2O2 has been investigated by HR-ESI-MS, ATR-FT-IR, and P-31 NMR spectroscopic techniques. The combination of spectroscopic studies and kinetic modeling implicated the existence of two types of dimeric peroxo complexes, [Zr-2(mu-eta(2):eta(2)-O-2){PW11O39}(2)(H2O)(x)]](8-) and [{Zr(mu-eta(2)-O-2)}(2)(PW11O39)(2)(H2O)(y)](10-), along with monomeric Zr (hydro)peroxo species that begin to dominate at a high excess of H2O2. Both dimeric mu-eta(2)-peroxo intermediates are inert toward alkenes under stoichiometric conditions. V-shape Hammett plots obtained for epoxidation of p-substituted styrenes suggested a biphilic nature of the active oxidizing species, which are monomeric Zr-hydroperoxo and peroxo species. Small basic additives increase the electrophilicity of the catalyst and decrease its nucleophilicity. HR-ESI-MS has identified a dimeric, most likely, bridging hydroperoxo species [{PW11O39Zr}(2)(mu-O)(mu-OOH)](9-), which may account for the improved epoxidation selectivity and regioselectivity toward sterically hindered C=C bonds.
引用
收藏
页码:18955 / 18969
页数:15
相关论文
共 18 条
  • [1] Highly Selective Thioether Oxidation with H2O2 Catalyzed by Zr-Substituted Keggin Phosphotungstate: Mechanistic Insights
    Zalomaeva, Olga V.
    Maksimchuk, Nataliya V.
    Marikovskaya, Sofia M.
    Antonov, Artem A.
    Kholdeeva, Oxana A.
    CHEMCATCHEM, 2024, 16 (07)
  • [2] Effect of the Polyanion Structure on the Mechanism of Alcohol Oxidation with H2O2 Catalyzed by Zr-Substituted Polyoxotungstates
    Maksimchuk, Nataliya V.
    Marikovskaya, Sofia M.
    Larionov, Kirill P.
    Evtushok, Vasilii Yu.
    Yanshole, Vadim V.
    Antonov, Artem A.
    Kholdeeva, Oxana A.
    INORGANIC CHEMISTRY, 2024, 63 (39) : 18043 - 18057
  • [3] Formation, Reactivity, and Catalytic Behavior of a Keggin Polyoxometalate/Bipyridine Hybrid in the Epoxidation of Cyclooctene with H2O2
    Hidalgo, Gabriel
    Barozzino-Consiglio, Gabriella
    Robeyns, Koen
    Devillers, Michel
    Gaigneaux, Eric M.
    INORGANIC CHEMISTRY, 2023, 62 (22) : 8576 - 8588
  • [4] Effect of reaction conditions on limonene epoxidation with H2O2 catalyzed by supported Keggin heteropolycompounds
    Casuscelli, SG
    Crivello, ME
    Perez, CF
    Ghione, G
    Herrero, ER
    Pizzio, LR
    Vázquez, PG
    Cáceres, CV
    Blanco, MN
    APPLIED CATALYSIS A-GENERAL, 2004, 274 (1-2) : 115 - 122
  • [5] Boosting H2O2 Activation for the Efficient Alkene Epoxidation over Polyoxometalate-based Tetrakaidecahedron-like Nanodice Assemblies
    Zhao, Yali
    Wang, Ziru
    Zhai, Jinxiu
    Cao, Xingjian
    He, Peilei
    EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2025,
  • [6] Catalysis of alkene epoxidation by manganese(II) and (III) complexes of both Schiff base and reduced Schiff base ligands utilizing environmentally benign H2O2
    Egekenze, Rita
    Gultneh, Yilma
    Butcher, Ray
    POLYHEDRON, 2018, 144 : 198 - 209
  • [7] First success of catalytic epoxidation of olefins by an electron-rich iron(III) porphyrin complex and H2O2:: imidazole effect on the activation of H2O2 by iron porphyrin complexes in aprotic solvent
    Nam, W
    Lee, HJ
    Oh, SY
    Kim, C
    Jang, HG
    JOURNAL OF INORGANIC BIOCHEMISTRY, 2000, 80 (3-4) : 219 - 225
  • [8] Synergistic Interplay of a Non-Heme Iron Catalyst and Amino Acid Coligands in H2O2 Activation for Asymmetric Epoxidation of α-Ayl-Substituted Styrenes
    Cusso, Olaf
    Ribas, Xavi
    Lloret-Fillol, Julio
    Costas, Miquel
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (09) : 2729 - 2733
  • [9] The strong influence of structures around titanium centers in dimeric mono-, di-, and tri-titanium(IV)-substituted Keggin polyoxotungstates on the catalytic epoxidation of alkenes with H2O2
    Kato, CN
    Negishi, S
    Yoshida, K
    Hayashi, K
    Nomiya, K
    APPLIED CATALYSIS A-GENERAL, 2005, 292 : 97 - 104
  • [10] Highly efficient CuCr-MMO catalyst for a base-free styrene epoxidation with H2O2 as the oxidant: synergistic effect between Cu and Cr
    Wang, Qian
    Liang, Xiao
    Bi, Ruxia
    Liu, Yanan
    He, Yufei
    Feng, Junting
    Li, Dianqing
    DALTON TRANSACTIONS, 2019, 48 (43) : 16402 - 16411