Pretreatment and process optimization of spent seaweed biomass (SSB) for bioethanol production using yeast (Saccharomyces cerevisiae)

被引:22
作者
Sudhakar, M. P. [1 ]
Arunkumar, K. [2 ]
Perumal, K. [3 ]
机构
[1] Govt India, Marine Biotechnol Div, Natl Inst Ocean Technol, Minist Earth Sci, Velacherry Tambaram Main Rd, Chennai 600100, Tamil Nadu, India
[2] Cent Univ Kerala, Dept Plant Sci, Kasaragod 671314, Kerala, India
[3] Sch Biodynam Farming, Annai Lea Community Coll, Biodyne Res Inst, Kadavur Tk, Tamil Nadu, India
关键词
Spent seaweed biomass; Acid pretreatment; Saccharomyces cerevisiae; Bioethanol; DILUTE-ACID HYDROLYSIS; ETHANOL-PRODUCTION; KAPPAPHYCUS-ALVAREZII; ENZYMATIC-HYDROLYSIS; MARINE MACROALGAE; RED; RESOURCE; SACCHARIFICATION; FERMENTATION; EXTRACTION;
D O I
10.1016/j.renene.2020.02.032
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The study aimed to utilize the industrial spent seaweed biomass (SSB) for effective ethanol production using yeast as a fermenting microorganism. Pretreatment of SSB was optimized using different acids. The highest percentage of spent biomass was obtained from G. corticata (12.53 +/- 2.66% DW). The proximate, ultimate and biochemical constituents of spent biomass were calculated. The total sugar (440 +/- 40 mg/g DW), reducing sugar (129.85 +/- 10.23 mg/g DW) and protein (11.08 +/- 0.11 mg/g DW) content of SSB were analysed. Pretreatment was optimized using three different acids. The effect of different pH (4.5, 5.0, 5.5 and 6.0) and temperature (30 and 35 degrees C) on ethanol production using baker's and MTCC yeast was studied. At 35 degrees C, the maximum (4.85% w/w) ethanol production was achieved in a fermentation process maintained at pH 4.5 and 5.0 at 24 h and 72 h, respectively. Substrate fermented with MTCC yeast recorded the maximum production of ethanol (4.98% w/w) at pH 4.5 within 48 h. The fermentation process was scaled up to 300 mL for ethanol production, and achieved 3.75% w/w ethanol (72 h, pH 5.5). To conclude, in future SSB would be a potential renewable novel substrate for bioethanol production when compared to other lignocellulosic substrates. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页码:456 / 471
页数:16
相关论文
共 50 条
[21]   Pretreatment optimization of Sorghum pioneer biomass for bioethanol production and its scale-up [J].
Koradiya, Manoj ;
Duggirala, Srinivas ;
Tipre, Devayani ;
Dave, Shailesh .
BIORESOURCE TECHNOLOGY, 2016, 199 :142-147
[22]   Engineering redox cofactor utilization for detoxification of glycolaldehyde, a key inhibitor of bioethanol production, in yeast Saccharomyces cerevisiae [J].
Jayakody, Lahiru N. ;
Horie, Kenta ;
Hayashi, Nobuyuki ;
Kitagaki, Hiroshi .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2013, 97 (14) :6589-6600
[23]   Improvement of bioethanol production from water hyacinth biomass by optimization of fermentation process conditions using response surface methodology [J].
Aragaw, Saleigzer Abay ;
Yemata, Temesgen Atnafu ;
Ayalew, Adane Adugna ;
Tadesse, Asab Alemneh ;
Fekad, Asmarech Yeshaneh ;
Shibesh, Alemayehu Keflu ;
Getie, Fentahun Adamu ;
Tessema, Tegen Dagnew ;
Wubieneh, Tessera Alemneh .
DISCOVER APPLIED SCIENCES, 2025, 7 (04)
[24]   Bioethanol production from watermelon rind by fermentation using Saccharomyces cerevisiae and Zymomonas mobilis [J].
Alex, Swapna ;
Saira, Ann ;
Nair, Deepa S. ;
Soni, K. B. ;
Sreekantan, Lekha ;
Rajmohan, K. ;
Reghunath, B. R. .
INDIAN JOURNAL OF BIOTECHNOLOGY, 2017, 16 (04) :663-666
[25]   Production of Bioethanol from Sugarcane Juice, Molasses and Paddy Straw using Saccharomyces cerevisiae [J].
Nehra, Kaur Singh ;
Jangra, Mukesh R. ;
Sharma, Pooja ;
Aggarwal, Minakshi ;
Mishra, Pooja ;
Bharti, Rama ;
Sachdeva, Hitesh ;
Poonia, Pardeep ;
Jangra, Sumit .
BIOSCIENCE BIOTECHNOLOGY RESEARCH COMMUNICATIONS, 2021, 14 (02) :581-586
[26]   Media Evaluation of Bioethanol Production from Cassava Starch Hydrolysate Using Saccharomyces cerevisiae [J].
Betiku, E. ;
Alade, O. S. .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2014, 36 (18) :1990-1998
[27]   Monitoring of rheological parameters in the anaerobic fermentation process to obtain bioethanol from craft brewer's spent grain using brewer's spent yeast and Saccharomyces cerevisiae S-04 [J].
Estrada-Garcia, Joaquin ;
Hernandez-Aguilar, Eduardo ;
Gutierrez-Casiano, Nayeli ;
Mendez-Contreras, Juan M. .
BIOMASS CONVERSION AND BIOREFINERY, 2024, :15585-15602
[28]   Bioethanol potential of raw and hydrothermally pretreated banana bulbs biomass in simultaneous saccharification and fermentation process with Saccharomyces cerevisiae [J].
Awedem Wobiwo, Florent ;
Chaturvedi, Tanmay ;
Boda, Maurice ;
Fokou, Elie ;
Emaga, Thomas Happi ;
Cybulska, Iwona ;
Deleu, Magali ;
Gerin, Patrick A. ;
Thomsen, Mette Hedegaard .
BIOMASS CONVERSION AND BIOREFINERY, 2019, 9 (03) :553-563
[29]   Fruit residues as biomass for bioethanol production using enzymatic hydrolysis as pretreatment [J].
Favaretto, Danubia Paula Cadore ;
Rempel, Alan ;
Lanzini, Julia Roberta ;
Silva, Ana Carolina Mattana ;
Lazzari, Tauane ;
Barbizan, Luiza Desengrini ;
Briao, Vandre Barbosa ;
Colla, Luciane Maria ;
Treichel, Helen .
WORLD JOURNAL OF MICROBIOLOGY & BIOTECHNOLOGY, 2023, 39 (06)
[30]   Fermentation process optimization by response surface methodology for bioethanol production from argane pulp hydrolysate using commercial and laboratory scale isolated Saccharomyces cerevisiae yeast [J].
Zouhair, Fatima Zahrae ;
Kabbour, Mohammed Rachid ;
Moussaid, Siham ;
Ebich, Fatima ;
Bouksaim, Mohammed ;
Lgaz, Hassane ;
Cho, Youngjae ;
Essamri, Azzouz .
BIOMASS CONVERSION AND BIOREFINERY, 2024, 14 (15) :16891-16898