pretreatment method with low or no inhibitor formation can
increase the overall hydrogen production. Moreover, an
integrated approach could be established as an attractive
method. However, extensive research is required concerning
the development of novel microbial strains or efficient mix
consortia that could advance the bioconversion of lignocellulosic biomass while enhancing hydrogen production.
Nevertheless, the production of hydrogen, along with other
industrially-valued products from waste via integrated process, can make the process further economical and environmentally viable.
References
A method for rapid determination of sugars in lignocellulose prehydrolyzate :: BioResources. (n.d.).
Abreu, A. A., Tavares, F., Alves, M. M., & Pereira, M. A. (2016).
Boosting dark fermentation with co-cultures of extreme thermophiles for biohythane production from garden waste. Bioresource Technology, 219, 132–138. https://doi.org/10.1016/j.
biortech.2016.07.096.
Agbor, V., Zurzolo, F., Blunt, W., Dartiailh, C., Cicek, N., Sparling, R.,
et al. (2014). Single-step fermentation of agricultural hemp residues
for hydrogen and ethanol production. Biomass and Bioenergy, 64,
62–69. https://doi.org/10.1016/j.biombioe.2014.03.027.
Aguilar-Reynosa, A., Romaní, A., Rodríguez-Jasso, R. M., Aguilar, C.
N., Garrote, G., & Ruiz, H. A. (2017). Microwave heating
processing as alternative of pretreatment in second-generation
biorefinery: An overview. Energy Conversion and Management,
136, 50–65. https://doi.org/10.1016/j.enconman.2017.01.004.
Akinosho, H., Yee, K., Close, D., & Ragauskas, A. (2014). The
emergence of Clostridium thermocellum as a high utility candidate
for consolidated bioprocessing applications. Frontiers in Chemistry,
2, 66.
Akroum-Amrouche, D., Akroum, H., & Lounici, H. (2019). Green
hydrogen production by Rhodobacter sphaeroides. Energy Sources,
Part A: Recovery, Utilization, and Environmental Effects. https://
doi.org/10.1080/15567036.2019.1666190.
Asada, Y., Tokumoto, M., Aihara, Y., Oku, M., Ishimi, K., Wakayama,
T., et al. (2006). Hydrogen production by co-cultures of Lactobacillus and a photosynthetic bacterium, Rhodobacter sphaeroides
RV. International Journal of Hydrogen Energy, 31, 1509–1513.
https://doi.org/10.1016/j.ijhydene.2006.06.017.
Assawamongkholsiri, T., Reungsang, A., & Sittijunda, S. (2019).
Photo-hydrogen and lipid production from lactate, acetate, butyrate,
and sugar manufacturing wastewater with an alternative nitrogen
source by rhodobacter sp. kku-ps1. PeerJ, 2019. https://doi.org/10.
7717/peerj.6653.
Badiei, M., Asim, N., Jahim, J. M., & Sopian, K. (2014). Comparison
of Chemical Pretreatment Methods for Cellulosic Biomass. Procedia—Social and Behavioral Sciences, 9, 170–174. https://doi.org/
10.1016/j.apcbee.2014.01.030.
Baskar, C., Baskar, S., & Dhillon, R. S. (2012). Biomass conversion:
The interface of biotechnology, chemistry and materials science
(pp. 1–465). https://doi.org/10.1007/978-3-642-28418-2.
Bhange, V. P., Bhivgade, U. V., & Vaidya, A. N. (2019). Artificial
neural network modeling in pretreatment of garden biomass for
lignocellulose degradation. Waste and Biomass Valorization, 10,
1571–1583. https://doi.org/10.1007/s12649-017-0163-z.
Bharathiraja, B., Sudharsanaa, T., Bharghavi, A., Jayamuthunagai, J.,
& Praveenkumar, R. (2016). Biohydrogen and Biogas—An
overview on feedstocks and enhancement process. Fuel, 185,
810–828. https://doi.org/10.1016/j.fuel.2016.08.030.
Bibra, M., Kumar, S., Wang, J., Bhalla, A., Salem, D. R., & Sani, R. K.
(2018). Single pot bioconversion of prairie cordgrass into biohydrogen by thermophiles. Bioresource Technology, 266, 232–241.
https://doi.org/10.1016/j.biortech.2018.06.046.
Brandt-Talbot, A., Gschwend, F. J. V., Fennell, P. S., Lammens, T. M.,
Tan, B., Weale, J., et al. (2017). An economically viable ionic liquid
for the fractionation of lignocellulosic biomass. Green Chemistry,
19, 3078–3102. https://doi.org/10.1039/C7GC00705A.
Brodeur, G., Yau, E., Badal, K., Collier, J., Ramachandran, K. B., &
Ramakrishnan, S. (2011). Chemical and physicochemical pretreatment of lignocellulosic biomass: A review, 2011. https://doi.org/10.
4061/2011/787532.
Cao, G.-L., Guo, W.-Q., Wang, A.-J., Zhao, L., Xu, C.-J., Zhao, Q.,
et al. (2012). Enhanced cellulosic hydrogen production from
lime-treated cornstalk wastes using thermophilic anaerobic microflora. International Journal of Hydrogen Energy, 37, 13161–13166.
https://doi.org/10.1016/j.ijhydene.2012.03.137.
Cao, G.-L., Xia, X.-F., Zhao, L., Wang, Z.-Y., Li, X., & Yang, Q.
(2013). Development of AFEX-based consolidated bioprocessing
on wheat straw for biohydrogen production using anaerobic
microflora. International Journal of Hydrogen Energy, 38,
15653–15659. https://doi.org/10.1016/j.ijhydene.2013.04.068.
Cao, G. L., Zhao, L., Wang, A. J., Wang, Z. Y., & Ren, N. Q. (2014).
Single-step bioconversion of lignocellulose to hydrogen using novel
moderately thermophilic bacteria. Biotechnology for Biofuels, 7,
1–13. https://doi.org/10.1186/1754-6834-7-82.
Cara, C., Moya, M., Ballesteros, I., Negro, M. J., González, A., & Ruiz,
E. (2007). Influence of solid loading on enzymatic hydrolysis of
steam exploded or liquid hot water pretreated olive tree biomass.
Process Biochemistry, 42, 1003–1009. https://doi.org/10.1016/j.
procbio.2007.03.012.
Chang, J.-J., Lin, J.-J., Ho, C.-Y., Chin, W.-C., & Huang, C.-C. (2010).
Establishment of rumen-mimic bacterial consortia: A functional
union for bio-hydrogen production from cellulosic bioresource.
International Journal of Hydrogen Energy, 35, 13399–13406.
https://doi.org/10.1016/j.ijhydene.2009.11.119.
Chen, C.-C., Chuang, Y.-S., Lin, C.-Y., Lay, C.-H., & Sen, B. (2012).
Thermophilic dark fermentation of untreated rice straw using mixed
cultures for hydrogen production. International Journal of Hydrogen Energy, 37, 15540–15546. https://doi.org/10.1016/j.ijhydene.
2012.01.036.
Cheng, D., & He, Q. (2014). Assessment of environmental stresses for
enhanced microalgal biofuel production—An overview. Frontiers in
Energy Research, 2, 1–8. https://doi.org/10.3389/fenrg.2014.00026.
Cheng, X.-Y., & Liu, C.-Z. (2011). Hydrogen production via
thermophilic fermentation of cornstalk by clostridium thermocellum. Energy & Fuels, 25, 1714–1720. https://doi.org/10.1021/
ef2000344.
Cheng, J.-R., & Zhu, M.-J. (2016). Biohydrogen production from
pretreated lignocellulose by Clostridium thermocellum. Biotechnology and Bioprocess Engineering, 21, 87–94. https://doi.org/10.
1007/s12257-015-0642-7.
Cheng, J., Su, H., Zhou, J., Song, W., & Cen, K. (2011a).
Microwave-assisted alkali pretreatment of rice straw to promote
enzymatic hydrolysis and hydrogen production in dark- and
photo-fermentation. International Journal of Hydrogen Energy,
36, 2093–2101. https://doi.org/10.1016/j.ijhydene.2010.11.021.
Cheng, C. L., Lo, Y. C., Lee, K. S., Lee, D. J., Lin, C. Y., & Chang,
J. S. (2011b). Biohydrogen production from lignocellulosic feedstock. Bioresource Technology, 102, 8514–8523. https://doi.org/10.
1016/j.biortech.2011.04.059.
Chu, Y., Wei, Y., Yuan, X., & Shi, X. (2011). Bioconversion of wheat
stalk to hydrogen by dark fermentation: Effect of different mixed
Bioconversion of Lignocellulosic Residues into Hydrogen
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