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microalgae biomass as feedstock. Bioresour Technol 135:191–198
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Kagan J (2015) Third and fourth generation biofuels_technologies, markets and economics through
2015. https://www.woodmac.com/our-expertise/focus/PowerKalogiannis K, Matsakas L, Aspden J et al (2018) Acid assisted organosolv delignification of
beechwood and pulp conversion towards high concentrated cellulosic ethanol via high gravity
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(Basel) 2:415–429
Hadar Y (2013) Sources for lignocellulosic raw materials for the production of ethanol. In:
Lignocellulose conversion. Springer, Berlin, pp 21–38
Hahn-Hägerdal B, Galbe M, Gorwa-Grauslund MF et al (2006) Bio-ethanol – the fuel of tomorrow
from the residues of today. Trends Biotechnol 24:549–556. https://doi.org/10.1016/j.tibtech.
2006.10.004
Hahn-Hägerdal B, Karhumaa K, Jeppsson M, Gorwa-Grauslund MF (2007) Metabolic engineering
for pentose utilization in Saccharomyces cerevisiae. In: Biofuels. Springer, Berlin, pp 147–177
Hamelinck CN, Van Hooijdonk G, Faaij APC (2005) Ethanol from lignocellulosic biomass: technoeconomic performance in short-, middle-and long-term. Biomass Bioenergy 28:384–410
Hamley-Bennett C, Lye GJ, Leak DJ (2016) Selective fractionation of sugar beet pulp for release of
fermentation and chemical feedstocks; optimisation of thermo-chemical pre-treatment.
Bioresour Technol 209:259–264
Han B, Wang L, Li S et al (2010) Ethanol production from sweet sorghum stalks by advanced solid
state fermentation (ASSF) technology. Chin J Biotechnol 26:966–973
Hara T, Tanoue K (2006) Laminar flame speed of ethanol, n-heptane, iso-octane air mixtures. JSAE
Pap 20068518
Hargreaves PI, Barcelos CA, da Costa ACA, Pereira N Jr (2013) Production of ethanol 3G from
Kappaphycus alvarezii: evaluation of different process strategies. Bioresour Technol
134:257–263
Harun R, Danquah MK, Forde GM (2010) Microalgal biomass as a fermentation feedstock for
bioethanol production. J Chem Technol Biotechnol 85:199–203
Harun R, Jason WSY, Cherrington T, Danquah MK (2011) Exploring alkaline pre-treatment of
microalgal biomass for bioethanol production. Appl Energy 88:3464–3467
Hassan SS, Williams GA, Jaiswal AK (2019) Moving towards the second generation of lignocellulosic biorefineries in the EU: drivers, challenges, and opportunities. Renew Sust Energ Rev
101:590–599
Hessami MJ, Cheng SF, Ambati RR et al (2019) Bioethanol production from agarophyte red
seaweed, Gelidium elegans, using a novel sample preparation method for analysing bioethanol
content by gas chromatography. 3 Biotech 9(1):25
Ho S-H, Huang S-W, Chen C-Y et al (2013) Bioethanol production using carbohydrate-rich
microalgae biomass as feedstock. Bioresour Technol 135:191–198
Hoover R (2001) Composition, molecular structure, and physicochemical properties of tuber and
root starches: a review. Carbohydr Polym 45:253–267
Humbird D, Aden A (2009) Biochemical production of ethanol from corn stover: 2008 state of
technology model. NREL/TP-510-46214, pp 1–16
Izmirlioglu G, Demirci A (2012) Ethanol production from waste potato mash by using Saccharomyces cerevisiae. Appl Sci 2:738–753
John RP, Anisha GS, Nampoothiri KM, Pandey A (2011) Micro and macroalgal biomass: a
renewable source for bioethanol. Bioresour Technol 102:186–193
Johnston DB, McAloon AJ (2014) Protease increases fermentation rate and ethanol yield in
dry-grind ethanol production. Bioresour Technol 154:18–25
Jung KA, Lim S-R, Kim Y, Park JM (2013) Potentials of macroalgae as feedstocks for biorefinery.
Bioresour Technol 135:182–190
Kagan J (2015) Third and fourth generation biofuels_technologies, markets and economics through
2015. https://www.woodmac.com/our-expertise/focus/PowerKalogiannis K, Matsakas L, Aspden J et al (2018) Acid assisted organosolv delignification of
beechwood and pulp conversion towards high concentrated cellulosic ethanol via high gravity
enzymatic hydrolysis and fermentation. Molecules 23:1647
Kar Y, Deveci H (2006) Importance of P-series fuels for flexible-fuel vehicles (FFVs) and alternative fuels. Energy Sources Part A 28:909–921
194
B. Kumar et al.
