280
17 Utilization of Microbial Potential for Bioethanol Production from Lignocellulosic Waste
References
1 Mohanty, B. and Abdullahi, I.I. (2016). Bioethanol production from lignocellu-
losic waste-a review. Biosciences Biotechnology Research Asia 13 (2): 1153.
2 Vohra, M., Manwar, J., Manmode, R. et al. (2014). Bioethanol production: feed-
stock and current technologies. Journal of Environmental Chemical Engineering
2 (1): 573–584.
3 Kang, Q., Appels, L., Tan, T. et al. (2014). Bioethanol from lignocellulosic
biomass: current findings determine research priorities. The Scientific World
Journal 2014 (298153): 1–13.
4 Cheng, J.J. and Timilsina, G.R. (2011). Status and barriers of advanced biofuel
technologies: a review. Renewable Energy 36 (12): 3541–3549.
5 Banerjee, S., Mudliar, S., Sen, R. et al. (2010). Commercializing lignocellulosic
bioethanol: technology bottlenecks and possible remedies. Biofuels, Bioproducts
and Biorefining: Innovation for a Sustainable Economy 4 (1): 77–93.
6 Baruah, J., Nath, B.K., Sharma, R. et al. (2018). Recent trends in the pretreat-
ment of lignocellulosic biomass for value-added products. Frontiers in Energy
Research 6: 141.
7 Fischer, G. and Schrattenholzer, L. (2001). Global bioenergy potentials through
2050. Biomass and Bioenergy 20 (3): 151–159.
8 Akhtar, N., Gupta, K., Goyal, D. et al. (2016). Recent advances in pretreatment
technologies for efficient hydrolysis of lignocellulosic biomass. Environmental
Progress & Sustainable Energy 35 (2): 489–511.
9 Dahadha, S., Amin, Z., Bazyar Lakeh, A.A. et al. (2017). Evaluation of differ-
ent pretreatment processes of lignocellulosic biomass for enhanced biomethane
production. Energy & Fuels 31 (10): 10335–10347.
10 Kumar, R., Sharma, R.K., and Singh, A.P. (2017). Cellulose based grafted
biosorbents-journey from lignocellulose biomass to toxic metal ions sorption
applications-a review. Journal of Molecular Liquids 232: 62–93.
11 Liu, Y.R., Thomsen, K., Nie, Y. et al. (2016). Predictive screening of ionic liquids
for dissolving cellulose and experimental verification. Green Chemistry 18 (23):
6246–6254.
12 Jedvert, K. and Heinze, T. (2017). Cellulose modification and shaping–a review.
Journal of Polymer Engineering 37 (9): 845–860.
13 Zhou, X., Li, W., Mabon, R. et al. (2017). A critical review on hemicellulose
pyrolysis. Energy Technology 5 (1): 52–79.
14 Farhat, W., Venditti, R.A., Hubbe, M. et al. (2017). A review of water-resistant
hemicellulose-based materials: processing and applications. ChemSusChem
10 (2): 305–323.
15 Xu, C. and Ferdosian, F. (2017). Conversion of Lignin into Bio-Based Chemicals
and Materials. Springer.
16 Kumar, R., Tabatabaei, M., Karimi, K. et al. (2016). Recent updates on lignocellu-
losic biomass derived ethanol-a review. Biofuel Research Journal 3 (1): 347–356.