pretreated bagasse
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2022 ◽  
Vol 9 ◽  
Author(s):  
Soni Tiwari ◽  
Janardan Yadav ◽  
Rajeeva Gaur ◽  
Ranjan Singh ◽  
Tuhina Verma ◽  
...  

The enzymatic saccharification of sugarcane bagasse was significantly increased by alkali pretreatment under mild conditions. The effectiveness of different concentrations of alkali and acid pretreatment of sugarcane bagasse for improving the enzymatic saccharification of lignocellulose has been evaluated. The sugarcane bagasse was characterized to contain 39.52% celluloses, 25.63% hemicelluloses, and 30.36% lignin. After that, sugarcane bagasse was pretreated with 5 and 10% of H2SO4 and NaOH at 121°C for 60 min. FTIR, XRD, and SEM analyses also showed significant molecular and surface structure changes of the sugarcane bagasse with 10% NaOH. Maximum saccharification was 489.5 mg/g from 10% NaOH pretreatment followed by 322.75, 301.25, and 276.6 mg/g from 10% H2SO4, 5% NaOH, and 5% H2SO4, respectively, which were 55.1, 32.0, 27.1, and 20.6 times higher than the that of the control. Cellulase and xylanase produced by Pseudomonas sp. CVB-10 (MK443365) and Bacillus paramycoides T4 (MN370035) were used to hydrolyze the pretreated bagasse, and the optimal condition was determined to be 30 h of the enzymatic reaction with the 3:1 ratio of enzymes under the temperature of 55°C, pH 5.0, and substrate concentration of 3%, leading to celluloses and hemicelluloses conversion in the enzymatic hydrolysis/saccharification that is more proficient.


Catalysts ◽  
2021 ◽  
Vol 11 (3) ◽  
pp. 340
Author(s):  
Wilson Morais Junior ◽  
Thályta Pacheco ◽  
Shipeng Gao ◽  
Pedro Martins ◽  
José Guisán ◽  
...  

The saccharification of sugarcane bagasse by enzymatic hydrolysis is one of the most promising processes for obtaining fermentable sugar to be used in the production of second-generation ethanol. The objective of this work was to study the immobilization and stabilization of two commercial enzymes: Endocellulase (E-CELBA) in dextran coated iron oxide magnetic nanoparticles activated with aldehyde groups (DIOMNP) and β-glucosidase (E-BGOSPC) in glyoxyl agarose (GLA) so that their immobilized derivatives could be applied in the saccharification of pretreated sugarcane bagasse. This was the first time that the pretreated sugarcane bagasse was saccharified by cascade reaction using a endocellulase immobilized on dextran coated Fe2O3 with aldehyde groups combined with a β-glucosidase immobilized on glyoxyl agarose. Both enzymes were successfully immobilized (more than 60% after reduction with sodium borohydride) and presented higher thermal stability than free enzymes at 60, 70, and 80 °C. The enzymatic hydrolysis of the sugarcane bagasse was carried out with 15 U of each enzyme per gram of bagasse in a solid-liquid ratio of 1:20 for 48 h at 50 °C. Under these conditions, 39.06 ± 1.18% of the cellulose present in the pretreated bagasse was hydrolyzed, producing 14.11 ± 0.47 g/L of reducing sugars (94.54% glucose). In addition, DIOMNP endo-cellulase derivative maintained 61.40 ± 1.17% of its enzymatic activity after seven reuse cycles, and GLA β-glucosidase derivative maintained up to 58.20 ± 1.55% of its enzymatic activity after nine reuse cycles.


2020 ◽  
Vol 1556 ◽  
pp. 012018
Author(s):  
Yu M Faleeva ◽  
K O Krysanova ◽  
A Yu Krylova ◽  
V M Zaichenko

2020 ◽  
Vol 8 (5) ◽  
pp. 1883-1887

Bagasse the by-product of sugarcane crop, mainly utilized by the sugar industry itself in cogeneration power plant to produce power through cogeneration to full-fill their energy needs and export the excess power generated to the grid. The present study was conducted to analyze the effect of (2%, 4% and 6%) NaOH pretreatment of bagasse at room temperature for 24 hours on the biogas production through anaerobic digestion. NaOH pretreated and untreated bagasse co-digested with cow manure was assessed to optimize the NaOH concentration for enhanced biogas production in batch mode experiments. Analytical techniques such as Field Effect Scanning Electron Microscope (FESEM), Fourier Transform Infra-Red (FTIR) and X-ray diffractometer (XRD) were used to investigate the changes on physical and chemical structures of pretreated bagasse. The 4% NaOH pretreatment resulted in highest biogas production which is 55.3% higher than untreated bagasse.


2019 ◽  
Vol 143 ◽  
pp. 104669 ◽  
Author(s):  
Qiang Lu ◽  
Zhen-xi Zhang ◽  
Xiao-ning Ye ◽  
Kai Li ◽  
Min-shu Cui ◽  
...  

2019 ◽  
Vol 290 ◽  
pp. 121764 ◽  
Author(s):  
Xiaohui Wang ◽  
Huiling Li ◽  
Qixuan Lin ◽  
Rui Li ◽  
Weiying Li ◽  
...  

2018 ◽  
Author(s):  
Carmen Salvador Pinos ◽  
Adalis Mesa Noval ◽  
Ángel Batallas Merino ◽  
Jonathan Villavicencio ◽  
Layanis Mesa Garriga ◽  
...  

Heliyon ◽  
2018 ◽  
Vol 4 (6) ◽  
pp. e00657 ◽  
Author(s):  
Jamila A.D. Jones ◽  
R.G. Kerr ◽  
B.A. Haltli ◽  
Winston F. Tinto

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