Bayrock DP, Ingledew WM (2001) Application of multistage continuous fermentation for production of fuel alcohol by very-high-gravity fermentation technology. J Ind Microbiol Biotechnol
27:87–93
Behera S, Ray RC (2015) Batch ethanol production from cassava (Manihot esculenta Crantz.) flour
using Saccharomyces cerevisiae cells immobilized in calcium alginate. Ann Microbiol
65:779–783
Belboom S, Bodson B, Léonard A (2015) Does the production of Belgian bioethanol fit with
European requirements on GHG emissions? Case of wheat. Biomass Bioenergy 74:58–65
Besada V, Andrade JM, Schultze F, González JJ (2009) Heavy metals in edible seaweeds
commercialised for human consumption. J Mar Syst 75:305–313
Białas W, Szymanowska D, Grajek W (2010) Fuel ethanol production from granular corn starch
using Saccharomyces cerevisiae in a long term repeated SSF process with full stillage recycling.
Bioresour Technol 101:3126–3131
Bibi R, Ahmad Z, Imran M et al (2017) Algal bioethanol production technology: a trend towards
sustainable development. Renew Sust Energ Rev 71:976–985
Borines MG, de Leon RL, Cuello JL (2013) Bioethanol production from the macroalgae Sargassum
spp. Bioresour Technol 138:22–29
Breisha GZ (2010) Production of 16% ethanol from 35% sucrose. Biomass Bioenergy
34:1243–1249
Brosse N, Dufour A, Meng X et al (2012) Miscanthus: a fast-growing crop for biofuels and
chemicals production. Biofuels Bioprod Biorefin 6:580–598
Buckow R, Weiss U, Heinz V, Knorr D (2007) Stability and catalytic activity of α-amylase from
barley malt at different pressure--temperature conditions. Biotechnol Bioeng 97:1–11
Burphan T, Tatip S, Limcharoensuk T et al (2018) Enhancement of ethanol production in very high
gravity fermentation by reducing fermentation-induced oxidative stress in Saccharomyces
cerevisiae. Sci Rep 8(13069):1–11
Burton T, Lyons H, Lerat Y, et al (2009) A review of the potential of marine algae as a source of
biofuel in Ireland, pp 1–88
Cardona CA, Quintero JA, Paz IC (2010) Production of bioethanol from sugarcane bagasse: status
and perspectives. Bioresour Technol 101:4754–4766
Cazetta ML, Celligoi M, Buzato JB, Scarmino IS (2007) Fermentation of molasses by Zymomonas
mobilis: effects of temperature and sugar concentration on ethanol production. Bioresour
Technol 98:2824–2828
CBU (2007) Carbon capture and storage_the “fourth generation” Biofuels-crop biotech update,
ISAAA. http://www.isaaa.org/kc/cropbiotechupdate/article/
Chandel AK, Chan ES, Rudravaram R et al (2007) Economics and environmental impact of
bioethanol production technologies: an appraisal. Biotechnol Mol Biol Rev 2:14–32
Chandrasekaran M, Bahkali AH (2013) Valorization of date palm (Phoenix dactylifera) fruit
processing by-products and wastes using bioprocess technology--Review. Saudi J Biol Sci
20:105–120
Chang J-W, Lin Y-H, Huang L-Y, Duan K-J (2011) The effect of fermentation configurations and
FAN supplementation on ethanol production from sorghum grains under very-high-gravity
conditions. J Taiwan Inst Chem Eng 42:1–4
Chaturvedi V, Verma P (2013) An overview of key pretreatment processes employed for bioconversion of lignocellulosic biomass into biofuels and value added products. 3 Biotech 3:415–431.
https://doi.org/10.1007/s13205-013-0167-8
Chen M, Smith PM, Wolcott MP (2016) US biofuels industry: a critical review of the opportunities
and challenges. Bioprod Bus 1:42–59
Cheng-Wu Z, Zmora O, Kopel R, Richmond A (2001) An industrial-size flat plate glass reactor for
mass production of Nannochloropsis sp.(Eustigmatophyceae). Aquaculture 195:35–49
Cherney J, Small E (2016) Industrial hemp in North America: production, politics and potential.
Agronomy 6(4):1–24
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