Thermophiles for biohydrogen production in microbial electrolytic cells

被引:33
作者
Rathinam, Navanietha Krishnaraj [1 ,2 ,4 ]
Bibra, Mohit [1 ]
Salem, David R. [1 ,4 ]
Sani, Rajesh K. [1 ,2 ,3 ,4 ]
机构
[1] South Dakota Sch Mines & Technol, Dept Chem & Biol Engn, Rapid City, SD 57701 USA
[2] South Dakota Sch Mines & Technol, BuG ReMeDEE Consortia, Rapid City, SD USA
[3] South Dakota Sch Mines & Technol, Dept Chem & Appl Biol Sci, Rapid City, SD 57701 USA
[4] Composite & Nanocomposite Adv Mfg Biomat Ctr CNAM, Rapid City, SD 57701 USA
关键词
Thermophiles; Microbial electrolysis; Electroactive microorganisms; Biohydrogen; Electrocatalysis; HYDROGEN GAS-PRODUCTION; ANAEROBIC-DIGESTION; CARBON NANOTUBES; CATHODE CATALYST; STAINLESS-STEEL; TEMPERATURE; WATER; PH; FERMENTATION; GENERATION;
D O I
10.1016/j.biortech.2019.01.020
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Thermophiles are promising options to use as electrocatalysts for bioelectrochemical applications including microbial electrolysis. They possess several interesting characteristics such as ability to catalyze a broad range of substrates at better rates and over a broad range of operating conditions, and better electrocatalysis/electrogenic activity over mesophiles. However, a very limited number of investigations have been carried out to explore the microbial reactions/pathways and the molecular mechanisms that contribute to better electrocatalysis/electrolysis in thermophiles. Here, we review the electroactive characteristics of thermophiles, their electron transfer mechanisms, and molecular insights behind the choice of thermophiles for bioelectrochemical/electrolytic processes.
引用
收藏
页码:171 / 178
页数:8
相关论文
共 76 条
[1]   THERMOSTABILITY AND ELECTRON-TRANSFER ACTIVITY OF THE FERREDOXIN FROM A THERMOPHILIC HYDROGEN-OXIDIZING BACTERIUM, BACILLUS-SCHLEGELII [J].
AONO, S ;
FUKUDA, N ;
OKURA, I .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 1995, 95 (02) :173-178
[2]   Highly thermostable GH39 β-xylosidase from a Geobacillus sp strain WSUCF1 [J].
Bhalla, Aditya ;
Bischoff, Kenneth M. ;
Sani, Rajesh K. .
BMC BIOTECHNOLOGY, 2014, 14
[3]  
Bibra M., 2018, BIORESOUR TECHNOL
[4]   Enhanced hydrogen production in microbial electrolysis cell with 3D self-assembly nickel foam-graphene cathode [J].
Cai, Weiwei ;
Liu, Wenzong ;
Han, Jinglong ;
Wang, Aijie .
BIOSENSORS & BIOELECTRONICS, 2016, 80 :118-122
[5]   High Surface Area Stainless Steel Brushes as Cathodes in Microbial Electrolysis Cells [J].
Call, Douglas F. ;
Merrill, Matthew D. ;
Logan, Bruce E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (06) :2179-2183
[6]   Startup of Electromethanogenic Microbial Electrolysis Cells with Two Different Biomass Inocula for Biogas Upgrading [J].
Cerrillo, Miriam ;
Vinas, Marc ;
Bonmati, August .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2017, 5 (10) :8852-8859
[7]   Unravelling the active microbial community in a thermophilic anaerobic digester-microbial electrolysis cell coupled system under different conditions [J].
Cerrillo, Miriam ;
Vinas, Marc ;
Bonmati, August .
WATER RESEARCH, 2017, 110 :192-201
[8]   Removal of volatile fatty acids and ammonia recovery from unstable anaerobic digesters with a microbial electrolysis cell [J].
Cerrillo, Miriam ;
Vinas, Marc ;
Bonmati, August .
BIORESOURCE TECHNOLOGY, 2016, 219 :348-356
[9]   Overcoming organic and nitrogen overload in thermophilic anaerobic digestion of pig slurry by coupling a microbial electrolysis cell [J].
Cerrillo, Miriam ;
Vinas, Marc ;
Bonmati, August .
BIORESOURCE TECHNOLOGY, 2016, 216 :362-372
[10]   Metabolic engineering of Caldicellulosiruptor bescii yields increased hydrogen production from lignocellulosic biomass [J].
Cha, Minseok ;
Chung, Daehwan ;
Elkins, James G. ;
Guss, Adam M. ;
Westpheling, Janet .
BIOTECHNOLOGY FOR BIOFUELS, 2013, 6