Analysis of biofuels production from sugar based on three criteria: Thermodynamics, bioenergetics, and product separation

被引:93
作者
Huang, Wei-Dong [1 ,2 ]
Zhang, Y. -H. Percival [1 ,3 ,4 ]
机构
[1] Virginia Tech, Virginia Polytech Inst & State Univ, Biol Syst Engn Dept, Blacksburg, VA 24061 USA
[2] Univ Sci & Technol China, Coll Earth & Space Sci, Environm Div, Hefei 230026, Peoples R China
[3] Virginia Polytech Inst & State Univ, ICTAS, Blacksburg, VA 24061 USA
[4] DOE BioEnergy Sci Ctr BESC, Oak Ridge, TN 37831 USA
关键词
CELL-PROTEIN-PRODUCTION; SUSTAINABLE ENERGY FUTURE; LIFE-CYCLE ASSESSMENT; MICROBIAL FUEL-CELLS; CLOSTRIDIUM-THERMOCELLUM; CELLULOSE UTILIZATION; ETHANOL FERMENTATION; BIODIESEL PRODUCTION; HYDROGEN-PRODUCTION; CANDIDA-TROPICALIS;
D O I
10.1039/c0ee00069h
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We compare the production of four biofuels - ethanol, butanol, fatty acid ethyl ester (palmitate ethyl ester, PEE), and hydrogen from renewable carbohydrate (glucose) based on the energy-retaining efficiency that is greatly influenced by thermodyanimcs, bioenergetics, and product separation. Ethanol and butanol are produced in anaerobic fermentations; PEE is produced in semi-aerobic fermentation; hydrogen is produced by cell-free synthetic enzymatic pathway biotransformation (SyPaB), where enzymes are produced from carbohydrate by microbial fermentations. A decreasing order in theoretical energy efficiency determined by thermodynamics is hydrogen, ethanol, butanol, and PEE. Bioenergetics analysis suggests that a small fraction of carbohydrate (e.g., 5-15%) is allocated to the synthesis of cell mass in anaerobic fermentations (e.g., ethanol and butanol), a significant fraction (e. g., 20-30% or higher) has to be allocated to the synthesis of cell mass for semi-aerobic fermentations (e.g., PEE production), and a very small fraction (e.g., less than 1%) is used to produce the enzyme mixtures. A decreasing order in product separation energy is hydrogen, secreted PEE, ethanol, butanol, and intracellular PEE. Hydrogen production by SyPaB would be most appealing because its energy-retaining efficiency is similar to 49% higher than ethanol, similar to 55% higher than butanol, and similar to 87% higher than PEE, even without considering higher hydrogen-fuel cell efficiency than those of biofuel-internal combustion engines. Our analysis suggests that it may be difficult to produce some advanced biofuels economically through aerobic fermentations due to low energy efficiency, as compared to ethanol, butanol, and hydrogen.
引用
收藏
页码:784 / 792
页数:9
相关论文
共 83 条
[1]   RELATIONSHIP OF SUBSTRATE, GROWTH-RATE, AND MAINTENANCE COEFFICIENT TO SINGLE CELL PROTEIN PRODUCTION [J].
ABBOTT, BJ ;
CLAMEN, A .
BIOTECHNOLOGY AND BIOENGINEERING, 1973, 15 (01) :117-127
[2]   Engineering for biofuels: exploiting innate microbial capacity or importing biosynthetic potential? [J].
Alper, Hal ;
Stephanopoulos, Gregory .
NATURE REVIEWS MICROBIOLOGY, 2009, 7 (10) :715-723
[3]  
[Anonymous], 2008, ENERGY NATURE SOC
[4]  
[Anonymous], 2002, Oxidative Phosphorylation
[5]   Metabolic engineering of Escherichia coli for 1-butanol production [J].
Atsumi, Shota ;
Cann, Anthony F. ;
Connor, Michael R. ;
Shen, Claire R. ;
Smith, Kevin M. ;
Brynildsen, Mark P. ;
Chou, Katherine J. Y. ;
Hanai, Taizo ;
Liao, James C. .
METABOLIC ENGINEERING, 2008, 10 (06) :305-311
[6]   Non-fermentative pathways for synthesis of branched-chain higher alcohols as biofuels [J].
Atsumi, Shota ;
Hanai, Taizo ;
Liao, James C. .
NATURE, 2008, 451 (7174) :86-U13
[7]   Ethanol fermentation technologies from sugar and starch feedstocks [J].
Bai, F. W. ;
Anderson, W. A. ;
Moo-Young, M. .
BIOTECHNOLOGY ADVANCES, 2008, 26 (01) :89-105
[8]   SCREENING OF YEASTS FOR PRODUCTION OF XYLITOL FROM D-XYLOSE AND SOME FACTORS WHICH AFFECT XYLITOL YIELD IN CANDIDA-GUILLIERMONDII [J].
BARBOSA, MFS ;
DEMEDEIROS, MB ;
DEMANCILHA, IM ;
SCHNEIDER, H ;
LEE, H .
JOURNAL OF INDUSTRIAL MICROBIOLOGY, 1988, 3 (04) :241-251
[9]   Greater Transportation Energy and GHG Offsets from Bioelectricity Than Ethanol [J].
Campbell, J. E. ;
Lobell, D. B. ;
Field, C. B. .
SCIENCE, 2009, 324 (5930) :1055-1057
[10]   Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells [J].
Chaudhuri, SK ;
Lovley, DR .
NATURE BIOTECHNOLOGY, 2003, 21 (10) :1229-1232