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Journal Article
M. K. Munshi, Gade, S. M., Mane, M. V., Mishra, D., Pal, S., Vanka, K., Rane, V. H., and Kelkar, A. A., 1,8-Diazabicyclo[5.4.0]undec-7-ene (DBU): a highly efficient catalyst in glycerol carbonate synthesis, Journal of Molecular Catalysis A-Chemical, vol. 391, pp. 144-149, 2014.
S. B. Umbarkar, Kotbagi, T. V., Biradar, A. V., Pasricha, R., Chanale, J., Dongare, M. K., Mamede, A. - S., Lancelot, C., and Payen, E., Acetalization of glycerol using mesoporous MoO3/SiO2 solid acid catalyst, Journal of Molecular Catalysis A-Chemical, vol. 310, no. 1-2, pp. 150-158, 2009.
P. Gogoi, Chilukuri, S., and Thirumalaiswamy, R., Active K-OMS-2 supported catalyst for hydrogenolysis of glycerol, ChemistrySelect, vol. 6, no. 33, pp. 8700-8708, 2021.
S. Bhowmik and Darbha, S., Advances in solid catalysts for selective hydrogenolysis of glycerol to 1,3-propanediol, Catalysis Reviews-Science and Engineering, 2021.
R. Parate, Borgave, M., Dharne, M., and Rode, C., Bioglycerol (C3) upgrading to 2,3-butanediol (C4) by cell-free extracts of Enterobacter aerogenes NCIM 2695, Journal of Chemical Technology and Biotechnology, vol. 96, no. 5, pp. 1316-1325, 2021.
S. Bhowmik, Enjamuri, N., Marimuthu, B., and Darbha, S., C-O hydrogenolysis of C3-C4 polyols selectively to terminal diols over Pt/W/SBA-15 catalysts, Catalysts, vol. 12, no. 9, p. 1070, 2022.
P. Gogoi, Kanna, N., Begum, P., Deka, R. C., Satyanarayana, C. V. V., and Raja, T., Controlling and stabilization of Ru nanoparticles by tuning the nitrogen content of the support for enhanced H-2 production through aqueous-phase reforming of glycerol, ACS Catalysis, vol. 10, no. 4, pp. 2489-2507, 2020.
R. B. Mane, Hengne, A. M., Ghalwadkar, A. A., Vijayanand, S., Mohite, P. H., Potdar, H. S., and Rode, C. V., Cu:Al Nano catalyst for selective hydrogenolysis of glycerol to 1,2-propanediol, Catalysis Letters, vol. 135, no. 1-2, pp. 141-147, 2010.
A. Verma, Gahlyan, P., Bawa, R., Dash, S. Ranjan, Prasad, A. K., and Kumar, R., Glycerol-triazole conjugated rhodamine as colorimetric and fluorimetric sensor for Cu2+, ChemistrySelect, vol. 6, no. 34, pp. 9288-9292, 2021.
R. B. Mane, Patil, S., Shirai, M., Rayalu, S. S., and Rode, C. V., Influence of carbon based supports on selectivity behavior of diols and propanol in Ru catalyzed glycerol hydrogenolysis, Applied Catalysis B: Environmental, vol. 204, 2017.
R. Pandya, Mane, R., and Rode, C., Influence of catalyst reduction temperature on autogenous glycerol hydrogenolysis over NiAl catalyst, Asian Journal of Organic Chemistry, vol. 11, no. 2, p. e202100704, 2022.
S. Bhowmik, Enjamuri, N., Sethia, G., Akula, V., Marimuthu, B., and Darbha, S., Insights into active tungsten species on Pt/W/SBA-15 catalysts for selective hydrodeoxygenation of glycerol to 1,3-propanediol, Molecular Catalysis, vol. 531, p. 112704, 2022.
A. Khan, Bhide, A. J., and Gadre, R. V., Mannitol production from glycerol by resting cells of Candida magnoliae, Bioresource Technology, vol. 100, no. 20, pp. 4911-4913, 2009.
S. M. Gade, Saptal, V. B., and Bhanage, B. M., Perception of glycerol carbonate as green chemical: synthesis and applications, Catalysis Communications, vol. 172, p. 106542, 2022.
T. Montini, Singh, R., Das, P., Lorenzut, B., Bertero, N., Riello, P., Benedetti, A., Giambastiani, G., Bianchini, C., Zinoviev, S., Miertus, S., and Fornasiero, P., Renewable H-2 from glycerol steam reforming: effect of La2O3 and CeO2 addition to Pt/Al2O3 catalysts., Chemsuschem, vol. 3, no. 5, pp. 619-628, 2010.
S. Charate, Shinde, S., Kondawar, S., Desai, U., Wadgaonkar, P., and Rode, C., Role of preparation parameters of Cu-Zn mixed oxide catalyst in solvent free glycerol carbonylation with urea, Journal of the Indian Chemical Society, vol. 98, no. 7, p. 100090, 2021.
S. Magar, Mohanraj, G. T., Jana, S. Kumar, and , Synthesis and characterization of supported heteropoly acid: efficient solid acid catalyst for glycerol esterification to produce biofuel additives, Inorganic and Nano-Metal Chemistry, vol. 50, no. 11, pp. 1157-1165, 2020.