Non-noble supported catalyst for oxidation of glucose under mild reaction conditions
Subject Areas : Iranian Journal of CatalysisMohd Hasbi Ab. Rahim 1 , Pui Xin Ng 2 , Anisah Sajidah Haji Saud 3 , Mohd Asyrak Deraman 4 , Gaanty Pragas Maniam 5
1 - Department of Industrial Chemistry, Faculty of Industrial Sciences and Technology, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia|Earth Resources & Sustainability Centre, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia
2 - Department of Industrial Chemistry, Faculty of Industrial Sciences and Technology, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia
3 - Department of Industrial Chemistry, Faculty of Industrial Sciences and Technology, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia
4 - Department of Industrial Chemistry, Faculty of Industrial Sciences and Technology, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia
5 - Department of Industrial Chemistry, Faculty of Industrial Sciences and Technology, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia|Earth Resources & Sustainability Centre, University Malaysia Pahang, Lebuhraya Tun Razak, Gambang, 26300, Pahang, Malaysia|Central Laboratory, University Malaysia Pahang, Lebuhraya Tun Razak, 26300 Kuantan, Pahang, Malaysia
Keywords:
Abstract :
[1] X. Zhang, K. Wilson, A. F. Lee, Chem Rev. 116 (2016) 12328-12368.
[2] S. Ramachandran, P. Fontanille, A. Pandey, C. Larroche, Food Technol Biotech. 44 (2006) 185-195.
[3] A. Cañete-Rodríguez, I. Santos-Dueñas, J. Jiménez-Hornero, A. Ehrenreich, W. Liebl, I. García-García, Process Biochem. 51 (2016) 1891-1903.
[4] P. Pal, R. Kumar, S. Banerjee, Front Chem Sci Eng. 13 (2019) 152-163.
[5] S. Anastassiadis, I. G. Morgunov, Recent Pat Biotechnol.1 (2007) 167-180.
[6] T. Ishida, K. Kuroda, N. Kinoshita, W. Minagawa, M. Haruta, J. Colloid Interface Sci. 323 (2008) 105-111.
[7] R. Saliger, N. Decker, U. Prüße, Appl. Catal. B. 102 (2011) 584-589.
[8] B. N. Zope, D. D. Hibbitts, M. Neurock, R. J. Davis, Science. 330 (2010) 74-78.
[9] S. E. Davis, B. N. Zope, R. J. Davis, Green Chem. 14 (2012) 143-147.
[10] M. Moo-Young, Comprehensive biotechnology, third ed., Elsevier, 2019.
[11] P. Pal, R. Kumar, S. Banerjee, Chem Eng Process. 104 (2016) 160-171.
[12] I. Dencic, J. Meuldijk, M. de Croon, V. Hessel, J. Flow Chem. 1 (2012) 13-23.
[13] T. Haynes, O. Ersen, V. Dubois, D. Desmecht, K. Nakagawa, S. Hermans, Appl. Catal. B. 241 (2019) 196-204.
[14] A. Mirescu, H. Berndt, A. Martin, U. Prüße, Appl Catal A-Gen. 317 (2007) 204-209.
[15] A. M. Velarde, P. Bartl, T. Nießen, W. Hoelderich, J. Mol Catal A Chem. 157 (2000) 225-236.
[16] M. Khawaji, Y. Zhang, M. Loh, I. Graça, E. Ware, D. Chadwick, Appl. Catal. B. 256 (2019) 117799-117811.
[17] S. M. Lama, J. Schmidt, A. Malik, R. Walczak, D. V. Silva, A. Völkel, M. Oschatz, ChemCatChem. 10 (2018) 2458-2465.
[18] Y. Zhuge, G. Fan, Y. Lin, L. Yang, F. Li, Dalton Trans. 48 (2019) 9161-9172.
[19] X. Zhang, H. Shi, Q. Chi, X. Liu, L. Chen, Polym Bull. 77 (2020) 1003-1014.
[20] C. Ehrhardt, M. Gjikaj, W. Brockner, Thermochim. Acta. 432 (2005) 36-40.
[21] D. Ghita, D. S. Ezeanu, P. Rosca, D. Cursaru, Rev. Chim. (Bucharest). 65 (2014) 1395-1398.
[22] B. Małecka, A. Łącz, E. Drożdż, A. Małecki, J Therm Anal Calorim. 119 (2015) 1053-1061.
[23] P. Bolt, F. H. Habraken, J. Geus, J. Solid State Chem. 135 (1998) 59-69.
[24] Z. Zsoldos, F. Garin, L. Hilaire, L. Guczi, J Mol Catal A Chem. 111 (1996) 113-122.
[25] L. P. Profeti, E. A. Ticianelli, E. M. Assaf, J. Power Sources. 175 (2008) 482-489.
[26] C. Cheng, S. Foo, A. Adesina, Catal Commun. 12 (2010) 292-298.
[27] R. Padilla, M. Benito, L. Rodríguez, A. Serrano, G. Muñoz, L. Daza, Int J Hydrogen Energ. 35 (2010) 8921-8928.
[28] L. Cumaranatunge,W. N. Delgass, J. Catal. 232 (2005) 38-42.
[29] M. Taramasso, G. Perego, B. Notari, Patent (1983), 4 410 501. 1981.
[30] Y. S. Ko,W. S. Ahn, Korean J Chem Eng. 15 (1998) 182-191.
[31] L. P. Profeti, E. A. Ticianelli, E. M. Assaf, Fuel. 87 (2008) 2076-2081.
[32] S. Albonetti, R. Mazzoni, F. Cavani (Eds.), Homogeneous, Heterogeneous and Nanocatalysis, RSC, 2014, 1-39.
[33] S. Laha, R. Kumar, J. Catal. 208 (2002) 339-344.
[34] L. Ji, J. Lin, H. Zeng, J. Phys. Chem. B. 104 (2000) 1783-1790.
[35] G. Busca, V. Lorenzelli, V. Bolis, Mater. Chem. Phys. 31 (1992) 221-228.
[36] E. S. Spier, I. Hermans. ChemPhysChem. 14 (2013) 3384-3388.
[37] S. J. Arts, E. J. Mombarg, H. van Bekkum, R. A. Sheldon, Synthesis. 1997 (1997) 597-613.
[38] H. Okatsu, N. Kinoshita, T. Akita, T. Ishida, M. Haruta, Appl Catal A-Gen. 369 (2009) 8-14.
[39] A. T. Bell, Science. 299 (2003) 1688-1691.
[40] C. Della Pina, E. Falletta, M. Rossi, Chem. Soc. Rev. 41 (2012) 350-369.
[41] Y. Liu, G. Zhao, D. Wang, Y. Li, Natl Sci Rev. 2 (2015) 150-166.
[42] T. Mallat,A. Baiker, Catal. Today. 19 (1994) 247-283.
[43] O. Špalek, J. Balej, I. Paseka, J. Chem. Soc., Faraday Trans.1. 78 (1982) 2349-2359.