Selective dehydration of bio-ethanol to ethylene catalyzed by lanthanum-phosphorous-modified HZSM-5: influence of the fusel.
Yaochi Hu, Nina Zhan, Chang Dou, He Huang, Yuwang Han, Dinghua Yu, Yi Hu
Index: Biotechnol. J. 5(11) , 1186-91, (2010)
Full Text: HTML
Abstract
Bio-ethanol dehydration to ethylene is an attractive alternative to oil-based ethylene. The influence of fusel, main byproducts in the fermentation process of bio-ethanol production, on the bio-ethanol dehydration should not be ignored. We studied the catalytic dehydration of bio-ethanol to ethylene over parent and modified HZSM-5 at 250°C, with weight hourly space velocity (WHSV) equal to 2.0/h. The influences of a series of fusel, such as isopropanol, isobutanol and isopentanol, on the ethanol dehydration over the catalysts were investigated. The 0.5%La-2%PHZSM-5 catalyst exhibited higher ethanol conversion (100%), ethylene selectivity (99%), and especially enhanced stability (more than 70 h) than the parent and other modified HZSM-5. We demonstrated that the introduction of lanthanum and phosphorous to HZSM-5 could weaken the negative influence of fusel on the formation of ethylene. The physicochemical properties of the catalysts were characterized by ammonia temperature-programmed desorption (NH(3)-TPD), nitrogen adsorption and thermogravimetry (TG)/differential thermogravimetry (DTG)/differential thermal analysis (DTA) (TG/DTG/DTA) techniques. The results indicated that the introduction of lanthanum and phosphorous to HZSM-5 could inhibit the formation of coking during the ethanol dehydration to ethylene in the presence of fusel. The development of an efficient catalyst is one of the key technologies for the industrialization of bio-ethylene.
Related Compounds
Related Articles:
2015-01-01
[PLoS ONE 10(3) , e0119284, (2015)]
2015-03-01
[Appl. Microbiol. Biotechnol. 99(5) , 2291-304, (2015)]
Cdt2-mediated XPG degradation promotes gap-filling DNA synthesis in nucleotide excision repair.
2015-01-01
[Cell Cycle 14(7) , 1103-15, (2015)]
Primula spectabilis Tratt. aerial parts: morphology, volatile compounds and flavonoids.
2011-08-01
[Phytochemistry 72(11-12) , 1371-8, (2011)]
In vivo and in vitro acquisition of resistance to voriconazole by Candida krusei.
2014-08-01
[Antimicrob. Agents Chemother. 58(8) , 4604-11, (2014)]