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Magnetic HMS silica as a Support to Immobilization of Catalysts Based on Cationic Manganese Porphyrins
Author(s) -
Ucoski Geani Maria,
Pinto Victor Hugo Araújo,
DeFreitasSilva Gilson,
Rebouças Júlio Santos,
Mazzaro Irineu,
Nunes Fábio Souza,
Nakagaki Shirley
Publication year - 2017
Publication title -
chemistryselect
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.437
H-Index - 34
ISSN - 2365-6549
DOI - 10.1002/slct.201700501
Subject(s) - cyclooctene , catalysis , cationic polymerization , cyclohexane , chemistry , reusability , manganese , heterogeneous catalysis , mesoporous silica , magnetite , amberlite , cyclohexanol , inorganic chemistry , organic chemistry , mesoporous material , materials science , software , adsorption , computer science , metallurgy , programming language
The immobilization of cationic manganese porphyrins (MnP) over the surface of a magnetic hexagonal HMS silica ( HMS‐Mag ) produced a solid with high surface area and relatively homogeneous pores. Given the presence of the magnetite, the catalysts are easily recovered and reused without loss of mass. The MnP immobilization explored the strong interaction between the positive charges of the cationic MnP and the deprotonated Si‐OH groups on the surface of HMS‐Mag . Soret bands on the UV‐Vis spectra of the MnP‐loaded HMS‐Mag confirmed the presence of MnP on the prepared solids. The catalytic efficiency, robustness, and reusability of the prepared solids were investigated on cis‐ cyclooctene and cyclohexane oxidations. The solids showed similar or higher catalytic efficiency than the corresponding MnP under homogeneous catalysis, with selectivity for cyclohexanol in cyclohexane oxidation. Additionally, the solid catalysts showed high resistance against deactivation, confirming the reusability capacity in at least five cycles of cyclooctene oxidation.

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