Biomass immobilization in hydrolyzed lignocellulosic material can enhance biohydrogen production from cassava residues?

被引:8
|
作者
Bolonhesi, Isabela Bruna de Tavares Machado [1 ]
Andreani, Cristiane Lurdes [2 ]
de Melo, Marcelo Rodrigues [3 ]
Gomes, Simone Dasmasceno [4 ]
Lopes, Deize Dias [1 ]
机构
[1] Univ Estadual Londrina, Urban Planning & Technol Ctr, Rodovia Celso Garcia Cid PR 445, BR-86057970 Londrina, PR, Brazil
[2] Univ Fed Roraima, Ave Cap Ene Garces, 2413 Aeroporto, BR-69310000 Boa Vista, RR, Brazil
[3] Univ Estadual Londrina, Dept Biochem & Biotechnol, Rodovia Celso Garcia Cid PR 445, BR-86057970 Londrina, PR, Brazil
[4] State Univ West Parana, Ctr Exact & Technol Sci, 2069 Univ St, BR-85819210 Cascavel, PR, Brazil
关键词
Acid hydrolysis; Steaming hydrolysis; Cell immobilization; Lignocellulosic biomass; Dark fermentation; Co-digestion; FERMENTATIVE HYDROGEN-PRODUCTION; ETHANOL-TYPE FERMENTATION; WASTE-WATER; PHYSICOCHEMICAL CHARACTERIZATION; RECENT INSIGHTS; FOOD WASTE; PRETREATMENT; BAGASSE; REACTOR; ANSBBR;
D O I
10.1016/j.bej.2022.108725
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
This study evaluated cassava stems (CS) as support material and a potential co-substrate in dark fermentation. Pre-tests were carried out with cell immobilization in CS without hydrolysis and submitted to acid and steam hydrolysis. Subsequently, hydrogen production was evaluated in an anaerobic sequencing batch biofilm reactor inoculated with biomass immobilized in CS, using cassava starch wastewater as substrate (OLR of 11 and 15 gCarb L-1d-1). The reactor was run for 180 cycles with maximum volumetric hydrogen productivity and a yield of 1.48 LH2 L-1d-1 and 1.98 molH2 kg- 1Carb (OLR 15 gCarb L- 1d- 1). The carbohydrate conversion remained above 97% in both assays, with a predominance of the acetate-ethanol route. During the assays, the Food/Mi-croorganisms ratio remained between 0.8 and 1.0 gCarb gTVSd-1, promoting the biomass control in the reactor. The structural characterization of CS before and after fermentation indicates that the cellulose, hemicellulose, and lignin content in the stems were changed after hydrolysis and fermentation, confirming the material degradation. In addition, the hydrolysis increased the CS surface area and favored cell immobilization of hydrogen-producing microorganisms such as bacteria of the genus Clostridium and Hydrogenispora, demonstrating that CS can be an alternative support material and co-substrate to be explored in dark fermentation.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Production of biohydrogen from hydrolyzed bagasse with thermally preheated sludge
    Chairattanamanokorn, Prapaipid
    Penthamkeerati, Patthra
    Reungsang, Alissara
    Lo, Yung-Chung
    Lu, Wei-Bin
    Chang, Jo-Shu
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (18) : 7612 - 7617
  • [22] Lignocellulosic waste biomass for biohydrogen production: future challenges and bio-economic perspectives
    Bhatia, Latika
    Sarangi, Prakash Kumar
    Singh, Akhilesh Kumar
    Prakash, Anand
    Shadangi, Krushna Prasad
    BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2022, 16 (03): : 838 - 858
  • [23] Ethanol production from lignocellulosic biomass
    Ogier, JC
    Ballerini, D
    Leygue, JP
    Rigal, L
    Pourquié, J
    OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 1999, 54 (01): : 67 - 94
  • [24] Biodiesel production from lignocellulosic biomass
    Santek, Mirela Ivancic
    Slavica, Anita
    Beluhan, Suncica
    Santek, Bozidar
    JOURNAL OF BIOTECHNOLOGY, 2017, 256 : S16 - S16
  • [25] Ethanol production from lignocellulosic biomass
    Ogier, J.-C.
    Ballerini, D.
    Leygue, J.-P.
    Rigal, L.
    Pourquié, J.
    Revue de l'Institute Francais du Petrole, 1999, 54 (01): : 67 - 94
  • [26] Biohydrogen production from aquatic biomass by fermentation
    Cheng, Jun
    Xia, Ao
    Liu, Yaqiong
    Lin, Richen
    Zhou, Junhu
    Cen, Kefa
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243
  • [27] Biohydrogen production from lignocellulosic feedstock: Abiotic and biotic methods
    Machineni, Lakshmi
    Deepanraj, B.
    Chew, Kit Wayne
    Rao, A. Gangagni
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2023, 182
  • [28] Current status of biohydrogen production from lignocellulosic biomass, technical challenges and commercial potential through pyrolysis process
    Chen, Wei-Hsin
    Farooq, Wasif
    Shahbaz, Muhammad
    Naqvi, Salman Raza
    Ali, Imtiaz
    Al-Ansari, Tareq
    Amin, Nor Aishah Saidina
    ENERGY, 2021, 226
  • [29] Cellulase immobilization to enhance enzymatic hydrolysis of lignocellulosic biomass: An all-inclusive review
    Xu, Chaozhong
    Tong, Shanshan
    Sun, Liqun
    Gu, Xiaoli
    CARBOHYDRATE POLYMERS, 2023, 321
  • [30] Renewable biohydrogen production from lignocellulosic biomass using fermentation and integration of systems with other energy generation technologies
    Bhatia, Shashi Kant
    Jagtap, Sujit Sadashiv
    Bedekar, Ashwini Ashok
    Bhatia, Ravi Kant
    Rajendran, Karthik
    Pugazhendhi, Arivalagan
    Rao, Christopher, V
    Atabani, A. E.
    Kumar, Gopalakrishnan
    Yang, Yung-Hun
    SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 765