Handbook of Biomass Valorization for Industrial Applications. Группа авторов
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34. Khayoon, M.S. and Hameed, B.H., Acetylation of glycerol to biofuel additives over sulfated activated carbon catalyst. Bioresour. Technol., 102, 9229–9235, 2011.
35. Ferreira, P., Fonseca, I.M., Ramos, A.M., Vital, J., Castanheiro, J.E., Acetylation of glycerol over heteropolyacids supported on activated carbon. Catal. Commun., 12, 573–576, 2011.
36. Wang, L., Zhang, J., Yang, S., Sun, Q., Zhu, L., Wu, Q., Zhang, H., Menga, X., Xiao, F.S., Sulfonated hollow sphere carbon as an efficient catalyst for acetalisation of glycerol. J. Mater. Chem. A, 1, 9422–9426, 2013.
37. Carvalho, W.A., Galhardo, T.S., Simone, N., Goncalves, M., Figueiredo, F., Mandelli, D., Preparation of sulfonated carbons from rice husk and their application in catalytic conversion of glycerol. ACS Sustain. Chem. Eng., 1, 1381–1389, 2013.
38. Tao, M.L., Guan, H.Y., Wang, X.H., Liu, Y.C., Louh, R.F., Fabrication of sulfonated carbon catalyst from biomass waste and its use for glycerol esterification. Fuel Process. Technol., 138, 355–360, 2015.
39. Okoye, P.U., Abdullah, A.Z., Hameed, B.H., Synthesis of oxygenated fuel additives via glycerol esterification with acetic acid over bio-derived carbon catalyst. Fuel, 209, 538–544, 2017.
40. Karnjanakom, S., Maneechakr, P., Samart, C., Guan, G., Ultrasound-assisted acetylation of glycerol for triacetin production over green catalyst: A liquid biofuel candidate. Energy Convers. Manage., 173, 262–270, 2018.
41. Palo, D.R., Dagle, R.A., Holladay, J.D., Methanol steam reforming for hydrogen production. Chem. Rev., 107, 3992–4021, 2007.
42. Haryanto, A., Fernando, S., Murali, N., Adhikari, S., Current status of hydrogen production techniques by steam reforming of ethanol: A review. Energy Fuels, 19, 2098–2106, 2005.
43. Rahman, M.M., Aqueous-phase reforming of glycerol over carbon-nanotube-supported catalysts. Catal. Lett., 150, 2674–2687, 2020.
44. Kunkes, E.L., Simonetti, D.A., Dumesic, J.A., Pyrz, W.D., Murillo, L.E., Chen, J.G., Buttrey, D.J., The role of rhenium in the conversion of glycerol to synthesis gas over carbon supported platinum–rhenium catalysts. J. Catal., 260, 164–177, 2008.
45. Soares, R.R., Simonetti, D.A., Dumesic, J.A., Glycerol as a source for fuels and chemicals by low-temperature catalytic processing. Angew. Chem. Int. Ed., 45, 3982–3985, 2006.
46. Fernandez, Y., Arenillas, A., Bermudez, J.M., Menendez, J.A., Comparative study of conventional and microwave-assisted pyrolysis, steam and dry reforming of glycerol for syngas production, using a carbonaceous catalyst. J. Anal. Appl. Pyrolysis, 88, 155–159, 2010.
47. Rodrigues, E.G., Pereira, M.F.R., Delgado, J.J., Chen, X., Orfao, J.J.M., Enhancement of the selectivity to dihydroxyacetone in glycerol oxidation using gold nanoparticles supported on carbon nanotubes. Catal. Commun., 16, 64–69, 2011.
48. Arcanjo, M.R.A., Silva Jr., I.J., Castellon, E.R., Molina, A.I., Vieira, R.S., Conversion of glycerol into lactic acid using Pd or Pt supported on carbon as catalyst. Catal. Today, 279, 317–326, 2017.
49. Zhang, C., Wang, T., Liu, X., Ding, Y., Cu-promoted Pt/activated carbon catalyst for glycerol oxidation to lactic acid. J. Mol. Catal. A—Chem., 424, 91–97, 2016.
50. Zhang, C., Wang, T., Liu, X., Ding, Y., Selective oxidation of glycerol to lactic acid over activated carbon supported Pt catalyst in alkaline solution. Chin. J. Catal., 37, 502–509, 2016.
51. Zhao, W., Yang, B., Yi, C., Lei, Z., Xu, J., Etherification of glycerol with isobutylene to produce oxygenate additive using sulfonated peanut shell catalyst. Ind. Eng. Chem. Res., 49, 12399–12404, 2010.
52. Devi, B.L.A.P., Gangadhar, K.N., Kumar, K.L.N.S., Shanker, K.S., Prasada, R.B.N., Prasad, P.S.S., Synthesis of sulfonic acid functionalized carbon catalyst from glycerol pitch and its application for tetrahydropyranyl protection/deprotection of alcohols and phenols. J. Mol. Catal. A: Chem., 345, 96–100, 2011.
53. Goncalves, M., Soler, F.C., Isoda, N., Carvalho, W.A., Mandelli, D., Sepulvedac, J., Glycerol conversion into value-added products in presence of a green recyclable catalyst: Acid black carbon obtained from coffee ground wastes. J. Taiwan Inst. Chem. Eng., 60, 294–301, 2016.
54. Goncalves, M., Souza, V.C., Galhardo, T.S., Mantovani, M., Figueiredo, F.C.A., Mandelli, D., Carvalho, W.A., Glycerol conversion catalyzed by carbons prepared from agroindustrial waste. Ind. Eng. Chem. Res., 52, 2832–2839, 2013.
55. Katryniok, B., Paul, S., Dumeignil, E., Recent development in the field of catalytic dehydration of glycerol to acrolein. ACS Catal., 3, 1819–1834, 2013.
56. Lili, N., Yunjie, D., Weimiao, C., Leifeng, G., Ronghe, L., Yuan, L., Qin, X., Glycerol dehydration to acrolein over activated carbon supported silicotungstic acids. Chin. J. Catal., 29, 212–214, 2008.
57. Adam, F., Hassan, H.E., Hello, K.M., The synthesis of N-heterocyclic carbene–silica nano-particles and its catalytic activity in the cyclization of glycerol. J. Taiwan Inst. Chem. Eng., 43, 619–630, 2012.
1 *Corresponding author: [email protected]
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