References

  1. A.S. Sharma, H. Kaur, D. Shah, Selective oxidation of alcohols by supported gold nanoparticles: recent advances, RSC Adv., 6 (2016) 28688–28727.
  2. H. Kargar, Synthesis, characterization and crystal structure of a manganese (III) Schiff base complex and investigation of its catalytic activity in the oxidation of benzylic alcohols, Transition, Met. Chem., 39 (2014) 811–817.
  3. T. Mallat, A. Baiker, Oxidation of alcohols with molecular oxygen on solid catalysts, Chem. Rev., 104 (2004) 3037–3058.
  4. H. Tsunoyama, H. Sakurai, Y. Negishi, T. Tsukuda, Size-specific catalytic activity of polymer-stabilized goldnanoclusters for aerobic alcohol oxidation in water, J. Am. Chem. Soc., 127 (2005) 9374–9375.
  5. H. Miyamura, R. Matsubara, Y. Miyazaki, S. Kobayashi, Aerobic oxidation of alcohols at room temperature and atmospheric conditions catalyzed by reusable goldnanoclusters stabilized by the benzene rings of polystyrene derivatives, Angew. Chem. Int. Ed., 46 (2007) 4151–4154.
  6. D. Ferri, C. Mondelli, F. Krumeich, A. Baiker, Discrimination of active palladium sites in catalytic liquid-phase oxidation of benzyl alcohol, J. Phys. Chem. B, 110 (2006) 22982–22986.
  7. A. Biffis, L. Minati, Efficient aerobic oxidation of alcohols in water catalysed by micro gel-stabilised metalnanoclusters, J. Catal., 236 (2005) 405–409.
  8. Z. Opre, J.D. Grunwaldt, M. Maciejewski, D. Ferri, T. Mallat, A. Baiker, Promoted Ru–hydroxyapatite: designed structure forReferences
  9. A.S. Sharma, H. Kaur, D. Shah, Selective oxidation of alcohols by supported gold nanoparticles: recent advances, RSC Adv., 6 (2016) 28688–28727.
  10. H. Kargar, Synthesis, characterization and crystal structure of a manganese (III) Schiff base complex and investigation of its catalytic activity in the oxidation of benzylic alcohols, Transition, Met. Chem., 39 (2014) 811–817.
  11. T. Mallat, A. Baiker, Oxidation of alcohols with molecular oxygen on solid catalysts, Chem. Rev., 104 (2004) 3037–3058.
  12. H. Tsunoyama, H. Sakurai, Y. Negishi, T. Tsukuda, Size-specific catalytic activity of polymer-stabilized goldnanoclusters for aerobic alcohol oxidation in water, J. Am. Chem. Soc., 127 (2005) 9374–9375.
  13. H. Miyamura, R. Matsubara, Y. Miyazaki, S. Kobayashi, Aerobic oxidation of alcohols at room temperature and atmospheric conditions catalyzed by reusable goldnanoclusters stabilized by the benzene rings of polystyrene derivatives, Angew. Chem. Int. Ed., 46 (2007) 4151–4154.
  14. D. Ferri, C. Mondelli, F. Krumeich, A. Baiker, Discrimination of active palladium sites in catalytic liquid-phase oxidation of benzyl alcohol, J. Phys. Chem. B, 110 (2006) 22982–22986.
  15. A. Biffis, L. Minati, Efficient aerobic oxidation of alcohols in water catalysed by micro gel-stabilised metalnanoclusters, J. Catal., 236 (2005) 405–409.
  16. Z. Opre, J.D. Grunwaldt, M. Maciejewski, D. Ferri, T. Mallat, A. Baiker, Promoted Ru–hydroxyapatite: designed structure for the fast and highly selective oxidation of alcohols with oxygen, J. Catal., 230 (2005) 406–419.
  17. H. Jiang, X. Sun, Y. Du, R. Chen, W. Xing, Catalytic activity of palladium nanoparticles immobilized on an amino-functionalized ceramic membrane support, Chin. J. Catal., 35 (2014) 1990–1996.
  18. J.I. Zhang, S.H. Xu, E. Kumacheva, Photo generation of fluorescent silver nanoclusters in polymer micro gels, Adv. Mater., 17 (2005) 2336–2340.
  19. Y. Mei, Y. Lu, F. Polzer, M. Ballauff, M. Drechsler, Catalytic activity of palladium nanoparticles encapsulated in spherical poly electrolyte brushes and core−shell micro gels, Chem. Mater., 19 (2007) 1062–1069.
  20. J.N. Reek, S. Arevalo, R. van Heerbeek, P.C. Kamer, P.W. Van Leeuwen, Dendrimers in catalysis, Adv. Catal., 49 (2006) 71–151.
  21. M. Esmaeilpour, J. Javidi, F.N. Dodeji, M. Mokhtari Abarghoui, M(II) Schiff base complexes (M = zinc, manganese, cadmium, cobalt, copper, nickel, iron, and palladium) supported on super paramagnetic Fe3O4@SiO2 nanoparticles: Synthesis, characterization and catalytic activity for Sonogashira-Hagihara coupling reactions, Transition. Met. Chem., 39 (2014) 797–809.
  22. T. Miyadera, Alumina-supported silver catalysts for the selective reduction of nitric oxide with propene and oxygen-containing organic compounds, Appl. Catal. B Environ., 2 (1993) 199–205.
  23. M. Valden, X. Lai, D.W. Goodman, Onset of catalytic activity of gold clusters on titania with the appearance of nonmetallic properties, Science, 281 (1998) 1647–1650.
  24. M. Zaarour, M. El Roz, B. Dong, R. Retoux, R. Aad, J. Cardin, C. Dufour, F. Gourbilleau, J.P. Gilson, S. Mintova, Photochemical preparation of silver nanoparticles supported on zeolite crystals, Langmuir, 30 (2014) 6250–6256.
  25. P.S. Gils, D. Ray, P.K. Sahooa, Designing of silver nanoparticles in gum arabic based semi-IPN hydrogel, Int. J. Biol. Macromol., 46 (2010) 237–244.
  26. Z. Wang, B. Tan, I. Hussain, N. Schaeffer, M.F. Wyatt, M. Brust, A.I. Cooper, Design of polymeric stabilizers for size-controlled synthesis of mono disperse gold nanoparticles in water, Langmuir, 23 (2007) 885–895.
  27. S. Panigrahi, S. Basu, S. Praharaj, S. Pande, S. Jana, A. Pal, S.K. Ghosh, T. Pal, Synthesis and size-selective catalysis by supported gold nanoparticles: study on heterogeneous and homogeneous catalytic process, J. Phys. Chem. C, 111 (2007) 4596–4605.
  28. T. Aditya, A. Pal, T. Pal, Nitroarene reduction: a trusted model reaction to test nanoparticle catalysts, Chem. Commun., 51 (2015) 9410–4931.
  29. K.B. Narayanan, N. Sakthivel, Synthesis and characterization of nano-gold composite using Cylindrocladium floridanum and its heterogeneous catalysis in the degradation of 4-nitrophenol, J. Hazard. Mater., 189 (2011) 519–525.
  30. L. Shang, T. Bian, B. Zhang, D.D. Zhang, L.Z. Wu, C. Ho Tung, Y. Yin, T. Zhang, Graphene-supported ultra fine metal nanoparticles encapsulated by mesoporous silica: robust catalysts for oxidation and reduction reactions, Angew. Chem., 126 (2014) 254–258.
  31. W. Hyk, M. Ciszkowska, Preparation and electrochemical characterization of poly(N-isopropylacrylamide-co-acrylic acid) gels swollen by non aqueous solvents: Alcohols, J. Phys. Chem. B, 106 (2006) 11469–11473.
  32. N. Sahiner, F. Seven, The use of super porous p(AAc (acrylic acid)) cryogels as support for Co and Ninanoparticle preparation and as reactor in H2 production from sodium borohydride hydrolysis, Energy, 71 (2014) 170–179.
  33. N. Sahiner, Soft and flexible hydrogel templates of different sizes and various functionalities for metal nanoparticle preparation and their use in catalysis, Prog. Polym. Sci., 38 (2013) 1329–1356.
  34. M. Boruah, P. Gogoi, A.K. Manhar, M. Khannam, M. Mandalb, S.K. Dolui, Biocompatible carboxymethylcellulose-g-poly (acrylic acid)/OMMT nanocomposite hydrogel for in vitro release of vitamin B 12, RSC Adv., 4 (2014) 43865–43873.
  35. M. Irani, H. Ismail, Z. Ahmad, M. Fan, Synthesis of linear low-density polyethylene-g-poly (acrylic acid)-co-starch/organo-montmorillonite hydrogel composite as an adsorbent for removal of Pb (ΙΙ) from aqueous solutions, J. Environ. Sci., 27 (2015) 9–20.
  36. S. Demirci, N. Sahiner, The use of metal nanoparticle-embedded poly(ethyleneimine) composite micro gel in the reduction of nitrophenols, Water Air Soil Pollut., 226 (2015) 64–76.
  37. A.R. Siamaki, Y. Lin, K. Woodberry, J.W. Connell, B.F. Gupton, Palladium nanoparticles supported on carbon nanotubes from solventless preparations: versatile catalysts for ligand-free Suzuki cross coupling reactions, J. Mater. Chem. A, 1 (2013) 12909–12918.
  38. C. Wang, F. Yang, W. Yang, L. Ren, Y. Zhang, X. Jia, L. Zhang, Y. Li, PdO nanoparticles enhancing the catalytic activity of Pd/carbonnanotubes for 4-nitrophenol reduction, RSC Adv., 5 (2015) 27526–27532.
  39. F. Yang, C. Chi, S. Dong, C. Wang, X. Jia, L. Ren, Y. Zhang, L. Zhang, Y. Li, Pd/PdO nanoparticles supported on carbon nanotubes: A highly effective catalyst for promoting Suzuki reaction in water, Catal. Today, 256 (2015) 186–192.
  40. B. Karimi, S. Abedi, J.H. Clark, V. Budarin, Highly efficient aerobic oxidation of alcohols using a recoverable catalyst: the role of mesoporous channels of SBA-15 in stabilizing palladium nanoparticles, Angew. Chem. Int. Ed. Engl., 45 (2006) 4776–4779.
  41. S. Velusamy, M. Ahmad, T. Punniyamurthy, Novel polyaniline-supported molybdenum-catalyzed aerobic oxidation of alcohols to aldehydes and ketones, Org. Lett., 6 (2004) 4821–4824.
  42. P.D. Sharma, P. Panchariya, P. Purohit, P.K. Sharma, Structure-reactivity correlation in the oxidation of substituted benzyl alcohols by imidazolium fluorochromate, Eur. Chem. Bull., 2 (2013) 816–824.
  43. M.R. Nabid, Y. Bide, E. Aghaghafari, S.J.T. Rezaei, PdNPs@ P2VP-Fe3O4 organic–inorganic hybrid micro gels as a nanoreactor for selective aerobic oxidation of alcohols, Catal. Lett., 144 (2014) 355–363.
  44. H.S. Lee, Y.W. Lin, Permeation of hair dye ingredients, p-phenylenediamine and aminophenol isomers, through protective gloves, Ann. Occup. Hyg., 53 (2009) 289–296.
  45. M. Ajmal, M. Siddiq, M.H. Al-Lohedanc, N. Sahiner, Highly versatile p (MAc)–M (M: Cu, Co, Ni) micro gel composite catalyst for individual and simultaneous catalytic reduction of nitro compounds and dyes, RSC Adv., 4 (2014) 59562–59570.
  46. M. Ajmal, S. Demirci, M. Siddiq, N. Aktas, N. Sahiner, Betaine micro gel preparation from 2-(methacryloyloxy) ethyl] dimethyl (3-sulfopropyl) ammonium hydroxide and its use as a catalyst system, Colloid. Surface, 486 (2015) 29–37.