Sequential catalytic-mixed-milling and thermohydrolysis of cassava starch improved ethanol fermentation

Journal article


Authors/Editors


Strategic Research Themes

No matching items found.


Publication Details

Author listIntaramas K., Sakdaronnarong C., Liu C.-G., Mehmood M.A., Jonglertjunya W., Laosiripojana N.

PublisherElsevier

Publication year2019

JournalFood and Bioproducts Processing (0960-3085)

Volume number114

Start page72

End page84

Number of pages13

ISSN0960-3085

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85058060232&doi=10.1016%2fj.fbp.2018.11.011&partnerID=40&md5=d8b2e92d7cde90776e11da8cf73bfb2f

LanguagesEnglish-Great Britain (EN-GB)


View in Web of Science | View on publisher site | View citing articles in Web of Science


Abstract

Cassava starch is an abundant feedstock for biological transformation to ethanol, however, its industrial processing needs further improvements to enhance efficiency and cost-effectiveness. In the present study, a low-cost catalyst (CC–SO3H) was synthesized by partial carbonization and sulfonation of crystalline cellulose, which was thermally stable and reactive at 160 °C in 5 times repeated batch of thermohydrolysis of cassava starch. The catalyst was studied for its potential role in the hydrolysis of cassava starch as a standard feedstock. It was shown that the milling of cassava starch in the presence of the CC–SO3H catalyst improved the solid-state reaction that enhanced porosity, increased surface area and decreased crystallinity of the starch granules. These phenomena caused the rapid thermohydrolysis of starch with an exceptionally high starch conversion rate (96.43%), glucose yield (93.12%), and glucose selectivity (95.32%) within 2 h of reaction at 160 °C, 10 bar. The highest ethanol yield (0.43 g ethanol/g total reducing sugars) was achieved at 96 h of fermentation corresponding to the highest ethanol concentration of 15.41 g/L from the fermentation of hydrolysate of mixed-milling/thermo-hydrolysis at 160 °C for 2 h of cassava starch. In addition, the reaction kinetics showed the feasibility of this process for robust bioethanol production from starchy feedstocks. © 2018


Keywords

Catalyst reusabilityCatalytic mixed-milling reactionThermohydrolysis


Last updated on 2023-29-09 at 07:36