10.1007/s40097-016-0192-3

Preparation of nano-structured cryptomelane materials for catalytic oxidation reactions

  1. Egyptian Petroleum Research Institute, Cairo, EG
  2. Faculty of Science, Ain Shames University, St. Cairo, EG
Cover Image

Published in Issue 04-05-2016

How to Cite

Said, S., Riad, M., Helmy, M., Mikhail, S., & Khalil, L. (2016). Preparation of nano-structured cryptomelane materials for catalytic oxidation reactions. Journal of Nanostructure in Chemistry, 6(2 (June 2016). https://doi.org/10.1007/s40097-016-0192-3

HTML views: 38

PDF views: 77

Abstract

Abstract Manganese-based octahedral molecular sieves of the type K-OMS-2 (cryptomelane structure) were prepared via reflux method by synproportionation of KMnO 4 and Mn 2+ in acidic aqueous suspension. For this method, different manganese anions (sulphate, chloride and acetate) were used, which exert a strong influence on the prepared materials. Several techniques such as X-ray diffraction, Fourier transformer infrared, Raman spectroscopy, transmission electron microscopy, differential and gravimetric thermal analysis and H 2 -temperature programmed reduction were used to characterize the prepared samples. The results revealed that the prepared samples were mainly pure mono-phase cryptomelane materials. The obtained K-OMS-2 material on using the sulphate anion has more available lattice oxygen as compared to that prepared by the other anions. The catalytic activity of the prepared samples was tested towards the oxidative dehydrogenation of cyclohexane. Over the K-OMS-2RS sample, cyclohexane conversion was significantly higher than the other prepared samples.

Keywords

  • Octahedral molecular sieves,
  • Manganese oxide,
  • Cyclohexane,
  • Catalytic oxidation reaction,
  • Cyclohexene

References

  1. Hattori et al. (2012) Efficient and selective photocatalytic cyclohexane oxidation on a layered titanate modified with iron oxide under sunlight and CO2 atmosphere (pp. 1910-1915) https://doi.org/10.1021/cs300339f
  2. Modi C, Trivedi P.: Zeolite-Y entrapped Ru(III) and Fe(III) complexes as heterogeneous catalysts for catalytic oxidation of cyclohexane reaction. Arab. J. Chem. 2013 (
  3. Under press
  4. )
  5. Suib (2008) Porous manganese oxide octahedral molecular sieves and octahedral layered materials (pp. 479-487) https://doi.org/10.1021/ar7001667
  6. Peluso et al. (2008) Synthesis and catalytic activity of manganese dioxide (type OMS-2) for the abatement of oxygenated VOCs (pp. 487-492) https://doi.org/10.1016/j.cattod.2007.12.132
  7. Dharmarathna et al. (2014) Manganese octahedral molecular sieve (OMS-2) catalysts for selective aerobic oxidation of thiols to disulfides (pp. 124-131) https://doi.org/10.1016/j.apcatb.2013.08.002
  8. Fan et al. (2008) Synthesis, characterization, and catalytic activity of cryptomelane nanomaterials produced with industrial manganese sulphate (pp. 393-402) https://doi.org/10.1016/j.jcis.2008.08.015
  9. Tian et al. (2011) Facile synthesis of porous manganese oxide K-OMS-2 materials and their catalytic activity for formaldehyde oxidation (pp. 118-122) https://doi.org/10.1016/j.micromeso.2010.09.022
  10. Sun et al. (2011) Catalytic oxidation of toluene over manganese oxide octahedral molecular sieves (OMS-2) synthesized by different methods (pp. 191-196) https://doi.org/10.1016/j.cej.2011.10.047
  11. Schurz et al. (2009) Octahedral molecular sieves of the type K-OMS-2 with different particle sizes and morphologies: impact on the catalytic properties in the aerobic partial oxidation of benzyl alcohol (pp. 42-49) https://doi.org/10.1016/j.apcata.2008.11.014
  12. Sithambarama et al. (2010) H2 production through the water-gas shift reaction: an in situ time-resolved X-ray diffraction investigation of manganese OMS-2 catalyst (pp. 2-7) https://doi.org/10.1016/j.cattod.2010.06.013
  13. Sun et al. (2013) Transition metal doped cryptomelane-type manganese oxide for low-temperature catalytic combustion of dimethyl ether (pp. 320-327) https://doi.org/10.1016/j.cej.2013.01.061
  14. Deng et al. (2014) Oxidation of p-chlorotoluene to p-chlorobenzaldehyde over manganese-based octahedral molecular sieves of different morphologies (pp. 126-130) https://doi.org/10.1016/j.catcom.2013.09.026
  15. Hndel et al. (2013) Synthesis of cryptomelane- and birnessite-type manganese oxides at ambient pressure and temperature (pp. 44-50) https://doi.org/10.1016/j.jcis.2013.05.041
  16. Almquist et al. (2014) An investigation on the structure and catalytic activity of cryptomelane-type manganese oxide materials prepared by different synthesis routes (pp. 249-262) https://doi.org/10.1016/j.cej.2014.04.102
  17. Duan et al. (2015) Catalytic degradation of Acid Orange 7 by manganese oxide octahedral molecular sieves with peroxymonosulfate under visible light irradiation (pp. 356-365) https://doi.org/10.1016/j.jhazmat.2014.12.015
  18. DeGuzman et al. (1994) Synthesis and characterization of octahedral molecular sieves (OMS-2) having the hollandite structure (pp. 815-821) https://doi.org/10.1021/cm00042a019
  19. Gac (2007) The influence of silver on the structural, redox and catalytic properties of the cryptomelane-type manganese oxides in the low-temperature CO oxidation reaction (pp. 107-117) https://doi.org/10.1016/j.apcatb.2007.04.002
  20. Julien et al. (2004) Profil enregistré d’une raie spectrale photographique et “largeur effective” Spectrochim (pp. 689-694) https://doi.org/10.1016/S1386-1425(03)00279-8
  21. Hndel et al. (2013) Synthesis of cryptomelane- and birnessite-type manganese oxides at ambient pressure and temperature (pp. 44-50) https://doi.org/10.1016/j.jcis.2013.05.041
  22. Chen et al. (2015) Structural distortion of molybdenum-doped manganese oxide octahedral molecular sieves for enhanced catalytic performance (pp. 10163-10171) https://doi.org/10.1021/acs.inorgchem.5b00906
  23. Julien et al. (2004) Lattice vibrations of manganese oxides: part I. Periodic structures (pp. 689-700) https://doi.org/10.1016/S1386-1425(03)00279-8
  24. Lan and Chen (2015) Hybridization of graphene in 3D complex nanovoids: synergistic nanocomposites for electrocatalytic reduction of hydrogen peroxide (pp. 1014-1022) https://doi.org/10.1016/j.electacta.2015.09.041
  25. Gao et al. (2008) Microstructures and spectroscopic properties of cryptomelane-type manganese dioxide nanofibers (pp. 13134-13140) https://doi.org/10.1021/jp804924f
  26. Cheng et al. (2011) Preparation of nanocrystalline VN by the melamine reduction of V2O5 xerogel and its supercapacitive (pp. 268-273) https://doi.org/10.1016/j.matchemphys.2011.09.040
  27. Walanda et al. (2005) Hydrothermal MnO2: synthesis, structure, morphology and discharge performance (pp. 325-341) https://doi.org/10.1016/j.jpowsour.2004.06.062
  28. Liu et al. (2010) Highly active CuO/OMS-2 catalysts for low-temperature CO oxidation (pp. 151-157) https://doi.org/10.1016/j.cej.2010.05.015
  29. Kuo et al. (2014) Redox preparation of mixed-valence cobalt manganese oxide nanostructured materials: highly efficient noble metal-free electrocatalysts for sensing hydrogen peroxide (pp. 334-341) https://doi.org/10.1039/C3NR03791F
  30. Brunauer et al. (1940) On a theory of the van der waals adsorption of gases (pp. 1723-1728) https://doi.org/10.1021/ja01864a025
  31. Malinger et al. (2006) Microwave frequency effects on synthesis of cryptomelane-type manganese oxide and catalytic activity of cryptomelane precursor (pp. 290-298) https://doi.org/10.1016/j.jcat.2006.02.005
  32. Gregg and Sing (1982) Academic Press Inc.
  33. Abdel Dayem et al. (2015) Rare earth oxides doped NiO/γ-Al2O3 catalyst for oxidative dehydrogenation of cyclohexane (pp. 611-617) https://doi.org/10.1016/S1002-0721(14)60461-0
  34. Feng et al. (2015) Catalytic oxidation of cyclohexane to KA oil by zinc oxide supportedmanganese 5, 10, 15, 20-tetrakis (4-nitrophenyl)porphyrin (pp. 221-225) https://doi.org/10.1016/j.molcata.2015.09.027