Ethanol production potential from AFEX™ and steam-exploded sugarcane residues for sugarcane biorefineries
暂无分享,去创建一个
Venkatesh Balan | B. Dale | J. Görgens | E. van Rensburg | Leonardo da Costa Sousa | Thapelo Mokomele
[1] Mingming Lu,et al. Effect of overliming and activated carbon detoxification on inhibitors removal and butanol fermentation of poplar prehydrolysates , 2018, Biotechnology for Biofuels.
[2] C. N. Stewart,et al. Development and use of a switchgrass (Panicum virgatum L.) transformation pipeline by the BioEnergy Science Center to evaluate plants for reduced cell wall recalcitrance , 2017, Biotechnology for Biofuels.
[3] J. Mcgowan,et al. Sustainable Ammonia Production from U.S. Offshore Wind Farms: A Techno-Economic Review , 2017 .
[4] Lucio Guido Tapia Carpio,et al. Optimal allocation of sugarcane bagasse for producing bioelectricity and second generation ethanol in Brazil: Scenarios of cost reductions , 2017 .
[5] J. L. Carvalho,et al. Agronomic and environmental implications of sugarcane straw removal: a major review , 2017 .
[6] S. Hamilton,et al. Cellulosic biofuel contributions to a sustainable energy future: Choices and outcomes , 2017, Science.
[7] L. Lynd,et al. Cellulosic ethanol: status and innovation. , 2017, Current opinion in biotechnology.
[8] Héctor A. Ruiz,et al. Hydrothermal processing in biorefineries : production of bioethanol and high added-value compounds of second and third generation biomass , 2017 .
[9] Venkatesh Balan,et al. Comprehensive characterization of non-cellulosic recalcitrant cell wall carbohydrates in unhydrolyzed solids from AFEX-pretreated corn stover , 2017, Biotechnology for Biofuels.
[10] Mateus F. Chagas,et al. Techno-economic analysis and climate change impacts of sugarcane biorefineries considering different time horizons , 2017, Biotechnology for Biofuels.
[11] Lucília Domingues,et al. Integrated approach for selecting efficient Saccharomyces cerevisiae for industrial lignocellulosic fermentations: Importance of yeast chassis linked to process conditions. , 2017, Bioresource technology.
[12] B. Chabbert,et al. Understanding the structural and chemical changes of plant biomass following steam explosion pretreatment , 2017, Biotechnology for Biofuels.
[13] A. Angelsen,et al. A causal analysis framework for land-use change and the potential role of bioenergy policy , 2016 .
[14] Yu Shen,et al. Engineering a wild-type diploid Saccharomyces cerevisiae strain for second-generation bioethanol production , 2016, Bioresources and Bioprocessing.
[15] Xue Feng Chang,et al. Insight into the evolution of the proton concentration during autohydrolysis and dilute-acid hydrolysis of hemicellulose , 2016, Biotechnology for Biofuels.
[16] Lee R. Lynd,et al. Cost competitive second‐generation ethanol production from hemicellulose in a Brazilian sugarcane biorefinery , 2016 .
[17] C. Wyman,et al. Next-generation ammonia pretreatment enhances cellulosic biofuel production , 2016 .
[18] J. Görgens,et al. Steam explosion pretreatment of triticale (× Triticosecale Wittmack) straw for sugar production. , 2016, New biotechnology.
[19] Venkatesh Balan,et al. Sugar loss and enzyme inhibition due to oligosaccharide accumulation during high solids-loading enzymatic hydrolysis , 2015, Biotechnology for Biofuels.
[20] B. Dale,et al. All biomass is local: The cost, volume produced, and global warming impact of cellulosic biofuels depend strongly on logistics and local conditions , 2015 .
[21] André Faaij,et al. Outlook for ethanol production costs in Brazil up to 2030, for different biomass crops and industrial technologies , 2015 .
[22] C. Farinas,et al. 2G ethanol from the whole sugarcane lignocellulosic biomass , 2015, Biotechnology for Biofuels.
[23] Venkatesh Balan,et al. Designer synthetic media for studying microbial-catalyzed biofuel production , 2015, Biotechnology for Biofuels.
[24] Mathew Aneke,et al. Techno-economic comparison of ethanol and electricity coproduction schemes from sugarcane residues at existing sugar mills in Southern Africa , 2014, Biotechnology for Biofuels.
[25] Ling Tao,et al. A highly efficient dilute alkali deacetylation and mechanical (disc) refining process for the conversion of renewable biomass to lower cost sugars , 2014, Biotechnology for Biofuels.
[26] Bruce E. Dale,et al. Take a closer look: biofuels can support environmental, economic and social goals. , 2014, Environmental science & technology.
[27] Seema Singh,et al. A comparative study of ethanol production using dilute acid, ionic liquid and AFEX™ pretreated corn stover , 2014, Biotechnology for Biofuels.
[28] Venkatesh Balan. Current Challenges in Commercially Producing Biofuels from Lignocellulosic Biomass , 2014, ISRN biotechnology.
[29] J. Görgens,et al. Impact of cultivar selection and process optimization on ethanol yield from different varieties of sugarcane , 2014, Biotechnology for Biofuels.
[30] M. Galbe,et al. Effects of production and market factors on ethanol profitability for an integrated first and second generation ethanol plant using the whole sugarcane as feedstock , 2014, Biotechnology for Biofuels.
[31] Venkatesh Balan,et al. Comparative metabolic profiling revealed limitations in xylose‐fermenting yeast during co‐fermentation of glucose and xylose in the presence of inhibitors , 2014, Biotechnology and bioengineering.
[32] Johann F. Görgens,et al. Evaluation of bagasse from different varieties of sugarcane by dilute acid pretreatment and enzymatic hydrolysis , 2013 .
[33] J. L. Carvalho,et al. Assessment of sugarcane trash for agronomic and energy purposes in Brazil , 2013 .
[34] E. R. Morais,et al. Technical and economic assessment of trash recovery in the sugarcane bioenergy production system , 2013 .
[35] Alicia A. Modenbach,et al. Enzymatic hydrolysis of biomass at high-solids loadings – A review , 2013 .
[36] Arnaldo Walter,et al. Sugarcane straw availability, quality, recovery and energy use: A literature review , 2013 .
[37] M. Ballesteros,et al. Ethanol Production from Sugarcane Bagasse Pretreated by Steam Explosion , 2013 .
[38] Pragnya L. Eranki,et al. Primer on Ammonia Fiber Expansion Pretreatment , 2013 .
[39] N. Mosier. Fundamentals of Aqueous Pretreatment of Biomass , 2013 .
[40] C. Wyman,et al. Fundamentals of Biomass Pretreatment at Low pH , 2013 .
[41] A. R. Gonçalves,et al. Industrial-scale steam explosion pretreatment of sugarcane straw for enzymatic hydrolysis of cellulose for production of second generation ethanol and value-added products. , 2013, Bioresource technology.
[42] T. Campbell,et al. A packed bed Ammonia Fiber Expansion reactor system for pretreatment of agricultural residues at regional depots , 2013 .
[43] Venkatesh Balan,et al. Quantitatively understanding reduced xylose fermentation performance in AFEX™ treated corn stover hydrolysate using Saccharomyces cerevisiae 424A (LNH-ST) and Escherichia coli KO11. , 2012, Bioresource technology.
[44] A. R. Gonçalves,et al. Mass balance of pilot-scale pretreatment of sugarcane bagasse by steam explosion followed by alkaline delignification. , 2012, Bioresource technology.
[45] G. Zacchi,et al. Techno-economic evaluation of 2nd generation bioethanol production from sugar cane bagasse and leaves integrated with the sugar-based ethanol process , 2012, Biotechnology for Biofuels.
[46] R. M. Filho,et al. Second generation ethanol in Brazil: can it compete with electricity production? , 2011, Bioresource technology.
[47] J. R. Hess,et al. Process Design and Economics for Conversion of Lignocellulosic Biomass to Ethanol , 2011 .
[48] Eduardo Ximenes,et al. Soluble inhibitors/deactivators of cellulase enzymes from lignocellulosic biomass. , 2011, Enzyme and microbial technology.
[49] W. V. van Zyl,et al. Next-generation cellulosic ethanol technologies and their contribution to a sustainable Africa , 2011, Interface Focus.
[50] M. Himmel,et al. Multi-scale visualization and characterization of lignocellulosic plant cell wall deconstruction during thermochemical pretreatment , 2011 .
[51] Ryan Davis,et al. Process Design and Economics for Biochemical Conversion of Lignocellulosic Biomass to Ethanol: Dilute-Acid Pretreatment and Enzymatic Hydrolysis of Corn Stover , 2011 .
[52] G. Cornacchia,et al. Energy Recovery from Sugarcane-Trash in the Light of 2nd Generation Biofuels. Part 1: Current Situation and Environmental Aspects , 2011 .
[53] Yong-Su Jin,et al. Engineered Saccharomyces cerevisiae capable of simultaneous cellobiose and xylose fermentation , 2010, Proceedings of the National Academy of Sciences.
[54] Bruce E Dale,et al. Multifaceted characterization of cell wall decomposition products formed during ammonia fiber expansion (AFEX) and dilute acid based pretreatments. , 2010, Bioresource technology.
[55] David D. Hsu,et al. Techno-economic comparison of process technologies for biochemical ethanol production from corn stover , 2010 .
[56] Venkatesh Balan,et al. Alkali‐based AFEX pretreatment for the conversion of sugarcane bagasse and cane leaf residues to ethanol , 2010, Biotechnology and bioengineering.
[57] M. Ballesteros,et al. Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: A review. , 2010, Bioresource technology.
[58] Abhijit Dutta,et al. Techno-Economic Analysis of Biochemical Scenarios for Production of Cellulosic Ethanol , 2010 .
[59] Guido Zacchi,et al. An approach to the utilisation of CO2 as impregnating agent in steam pretreatment of sugar cane bagasse and leaves for ethanol production , 2010, Biotechnology for biofuels.
[60] P. Moore,et al. Sugarcane for bioenergy production: an assessment of yield and regulation of sucrose content. , 2010, Plant biotechnology journal.
[61] M. Galbe,et al. SO2-catalyzed steam pretreatment and fermentation of enzymatically hydrolyzed sugarcane bagasse , 2010 .
[62] Bryan Bals,et al. Evaluation of ammonia fibre expansion (AFEX) pretreatment for enzymatic hydrolysis of switchgrass harvested in different seasons and locations , 2010, Biotechnology for biofuels.
[63] B. Dale,et al. The impacts of pretreatment on the fermentability of pretreated lignocellulosic biomass: a comparative evaluation between ammonia fiber expansion and dilute acid pretreatment , 2009, Biotechnology for biofuels.
[64] Charles E Wyman,et al. Effect of xylanase supplementation of cellulase on digestion of corn stover solids prepared by leading pretreatment technologies. , 2009, Bioresource technology.
[65] C. Felby,et al. Yield-determining factors in high-solids enzymatic hydrolysis of lignocellulose , 2009, Biotechnology for biofuels.
[66] Bruce E Dale,et al. 'Cradle-to-grave' assessment of existing lignocellulose pretreatment technologies. , 2009, Current opinion in biotechnology.
[67] Göran Berndes,et al. Environmental, land-use and economic implications of Brazilian sugarcane expansion 1996–2006 , 2009 .
[68] Bruce E. Dale,et al. Cellulosic ethanol production from AFEX-treated corn stover using Saccharomyces cerevisiae 424A(LNH-ST) , 2009, Proceedings of the National Academy of Sciences.
[69] G. Lidén,et al. Modeling simultaneous glucose and xylose uptake in Saccharomyces cerevisiae from kinetics and gene expression of sugar transporters , 2008, Bioprocess and biosystems engineering.
[70] Venkatesh Balan,et al. Ethanolic fermentation of hydrolysates from ammonia fiber expansion (AFEX) treated corn stover and distillers grain without detoxification and external nutrient supplementation , 2008, Biotechnology and bioengineering.
[71] L. Lynd,et al. How biotech can transform biofuels , 2008, Nature Biotechnology.
[72] J. Goldemberg. Ethanol for a Sustainable Energy Future , 2007, Science.
[73] N. Mosier,et al. Optimization of pH controlled liquid hot water pretreatment of corn stover. , 2005, Bioresource technology.
[74] C. Wyman,et al. Features of promising technologies for pretreatment of lignocellulosic biomass. , 2005, Bioresource technology.
[75] Bärbel Hahn-Hägerdal,et al. Fermentation of lignocellulosic hydrolysates. I: inhibition and detoxification , 2000 .
[76] L. J. Douglas,et al. CONVERSION OF LIGNOCELLULOSIC BIOMASS TO ETHANOL , 1985 .
[77] M. Ulloa,et al. [Fixation of nitrogen in vitro by Agrobacterium azotophilum in various substrates, especially soil and by-products of the sugar industry]. , 1973, Revista latinoamericana de microbiologia.
[78] W J Macneal,et al. THE CONTINUING PROGRESS OF CANCER RESEARCH. , 1934, Science.
[79] Domingos Guilherme Pellegrino Cerri,et al. Guidelines for the recovery of sugarcane straw from the field during harvesting , 2017 .
[80] Somayeh Farzad,et al. Economic and environmental assessment of cellulosic ethanol production scenarios annexed to a typical sugar mill. , 2017, Bioresource technology.
[81] Carlos Martín,et al. Pretreatment of lignocellulose: Formation of inhibitory by-products and strategies for minimizing their effects. , 2016, Bioresource technology.
[82] S. Teter,et al. Enzymatic processes and enzyme development in biorefining , 2014 .
[83] E. R. Morais,et al. Technical and economic assessment of trash recovery in the sugarcane bioenergy , 2013 .
[84] B. Dale,et al. Food, fuel, and plant nutrient use in the future. , 2013 .
[85] Rubens Maciel Filho,et al. Integrated versus stand-alone second generation ethanol production from sugarcane bagasse and trash. , 2012, Bioresource technology.
[86] Bryan Bals,et al. Evaluating the impact of ammonia fiber expansion (AFEX) pretreatment conditions on the cost of ethanol production. , 2011, Bioresource technology.
[87] Venkatesh Balan,et al. Lignocellulosic biomass pretreatment using AFEX. , 2009, Methods in molecular biology.
[88] W Alonso Pippo,et al. Agro-industry sugarcane residues disposal: the trends of their conversion into energy carriers in Cuba. , 2007, Waste management.
[89] Mats Galbe,et al. Comparison of the fermentability of enzymatic hydrolyzates of sugarcane bagasse pretreated by steam explosion using different impregnating agents , 2002, Applied biochemistry and biotechnology.
[90] B. Dien,et al. Fermentations with New Recombinant Organisms , 1999, Biotechnology progress.
[91] B. V. Niekerk. Byproducts of the sugar industry as animal feeds , 1981 .