Redwood, M. D., Paterson-Beedle, M., & MacAskie, L. E. (2009).
Integrating dark and light bio-hydrogen production strategies:
Towards the hydrogen economy. Reviews in Environmental Science
& Biotechnology, 8, 149–185. https://doi.org/10.1007/s11157-0089144-9.
Ren, N., Wang, A., Gao, L., Xin, L., Lee, D. J., & Su, A. (2008).
Bioaugmented hydrogen production from carboxymethyl cellulose
and partially delignified corn stalks using isolated cultures. International Journal of Hydrogen Energy, 33, 5250–5255. https://doi.
org/10.1016/j.ijhydene.2008.05.020.
Ren, N., Wang, A., Cao, G., Xu, J., & Gao, L. (2009). Bioconversion of
lignocellulosic biomass to hydrogen: Potential and challenges.
Biotechnology Advances, 27, 1051–1060. https://doi.org/10.1016/j.
biotechadv.2009.05.007.
Ren, N. Q., Zhao, L., Chen, C., Guo, W. Q., & Cao, G. L. (2016a).
A review on bioconversion of lignocellulosic biomass to H2: Key
challenges and new insights. Bioresource Technology, 215, 92–99.
https://doi.org/10.1016/j.biortech.2016.03.124.
Ren, C., Wang, W., Mao, Y., Yuan, X., Song, Z., Sun, J., et al. (2016b).
Comparative life cycle assessment of sulfoaluminate clinker
production derived from industrial solid wastes and conventional
raw materials. Journal of Cleaner Production. https://doi.org/10.
1016/j.jclepro.2017.05.184.
Salakkam, A., Plangklang, P., Sittijunda, S., Boonmee Kongkeitkajorn,
M., Lunprom, S., & Reungsang, A. (2019). Bio-hydrogen and
methane production from lignocellulosic materials. In Biomass
bioenergy—Recent trends future challenges. IntechOpen. https://
doi.org/10.5772/intechopen.85138.
Salimi, F., & Mahadevan, R. (2013). Characterizing metabolic
interactions in a clostridial co-culture for consolidated bioprocessing. BMC Biotechnology, 13, 95.
Seok, J., Lee, Y. Y., & Hyun, T. (2015). A review on alkaline
pretreatment technology for bioconversion of lignocellulosic
biomass. Bioresource Technology. https://doi.org/10.1016/j.
biortech.2015.08.085.
Sharma, A., & Arya, S. K. (2019). Photobiological production of
biohydrogen: Recent advances and strategy. Springer International
Publishing. https://doi.org/10.1007/978-3-030-14463-0_3.
Sheng, T., Gao, L., Zhao, L., Liu, W., & Wang, A. (2015). Direct
hydrogen production from lignocellulose by the newly isolated
Thermoanaerobacterium thermosaccharolyticum strain DD32. RSC
Advances, 5, 99781–99788. https://doi.org/10.1039/C5RA20000H.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass—An overview. Bioresource Technology,
199, 76–82. https://doi.org/10.1016/j.biortech.2015.08.030.
Sinha, P., & Pandey, A. (2011). An evaluative report and challenges for
fermentative biohydrogen production. International Journal of
Hydrogen Energy, 36, 7460–7478. https://doi.org/10.1016/j.
ijhydene.2011.03.077.
Skjånes, K., Andersen, U., Heidorn, T., & Borgvang, S. A. (2016).
Design and construction of a photobioreactor for hydrogen
production, including status in the field. Journal of Applied
Phycology, 28, 2205–2223. https://doi.org/10.1007/s10811-0160789-4.
Song, Z.-X., Li, X.-H., Li, W.-W., Bai, Y.-X., Fan, Y.-T., & Hou, H.W. (2014). Direct bioconversion of raw corn stalk to hydrogen by a
new strain Clostridium sp. FS3. Bioresource Technology, 157, 91–
97. https://doi.org/10.1016/j.biortech.2014.01.084.
Soni, S. K., & Soni, R. (2010). Regulation of cellulase synthesis in
Chaetomium erraticum. BioResources, 5(1), 81–98.
Su, H., Cheng, J., Zhou, J., Song, W., & Cen, K. (2009). Improving
hydrogen production from cassava starch by combination of dark
and photo fermentation. International Journal of Hydrogen Energy,
34, 1780–1786. https://doi.org/10.1016/j.ijhydene.2008.12.045.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83, 1–11.
https://doi.org/10.1016/S0960-8524(01)00212-7.
Sveshnikov, D., Sveshnikova, N., Rao, K., & Hall, D. (2006).
Hydrogen metabolism of mutant forms of Anabaena variabilis in
continuous cultures and under nutritional stress. FEMS Microbiology Letters, 147, 297–301. https://doi.org/10.1111/j.1574-6968.
1997.tb10257.x.
Taha, M., Shahsavari, E., Al-Hothaly, K., Mouradov, A., Smith, A. T.,
Ball, A. S., et al. (2015). Enhanced biological straw saccharification
through coculturing of lignocellulose-degrading microorganisms.
Applied Biochemistry and Biotechnology, 175, 3709–3728.
Talluri, S., Raj, S. M., & Christopher, L. P. (2013). Consolidated
bioprocessing of untreated switchgrass to hydrogen by the extreme
thermophile Caldicellulosiruptor saccharolyticus DSM 8903. Bioresource Technology, 139, 272–279. https://doi.org/10.1016/j.
biortech.2013.04.005.
Tapia-Venegas, E., Ramirez-Morales, J. E., Silva-Illanes, F.,
Toledo-Alarcón, J., Paillet, F., Escudie, R., et al. (2015). Biohydrogen production by dark fermentation: Scaling-up and technologies integration for a sustainable system. Reviews in Environmental
Science & Biotechnology, 14, 761–785. https://doi.org/10.1007/
s11157-015-9383-5.
Tian, Q.-Q., Liang, L., & Zhu, M.-J. (2015). Enhanced biohydrogen
production from sugarcane bagasse by Clostridium thermocellum
supplemented with CaCO 3 . Bioresource Technology, 197, 422–428.
https://doi.org/10.1016/j.biortech.2015.08.111.
Tiwari, M. S., Gawade, A. B., & Yadav, G. D. (2017). Magnetically
separable sulfated zirconia as highly active acidic catalysts for
selective synthesis of ethyl levulinate from furfuryl alcohol. Green
Chemistry, 19, 963–976. https://doi.org/10.1039/C6GC02466A.
Tiwari, M. S., Dicks, J. S., Keogh, J., Ranade, V. V., & Manyar, H. G.
(2020). Direct conversion of furfuryl alcohol to butyl levulinate using
tin exchanged tungstophosphoric acid catalysts. Molecular Catalysis,
488, 110918. https://doi.org/10.1016/j.mcat.2020.110918.
Trchounian, K., Sawers, R. G., & Trchounian, A. (2017). Improving
biohydrogen
productivity
by
microbial
darkand
photo-fermentations: Novel data and future approaches. Renewable
and Sustainable Energy Reviews, 80, 1201–1216. https://doi.org/10.
1016/j.rser.2017.05.149.
Ummalyma, S. B., Supriya, R. D., Sindhu, R., Binod, P., Nair, R. B.,
Pandey, A., & Gnansounou, E. (2019). Biological pretreatment of
lignocellulosic biomass—Current trends and future perspectives. In
Second and third generation of feedstocks (pp. 197–212). Elsevier.
https://doi.org/10.1016/B978-0-12-815162-4.00007-0.
Valdez-Vazquez, I., Pérez-Rangel, M., Tapia, A., Buitrón, G., Molina,
C., Hernández, G., et al. (2015). Hydrogen and butanol production
from native wheat straw by synthetic microbial consortia integrated
by species of Enterococcus and Clostridium. Fuel, 159, 214–222.
https://doi.org/10.1016/j.fuel.2015.06.052.
Wang, J., & Wan, W. (2008). Effect of Fe
2+ concentration on
fermentative hydrogen production by mixed cultures. International
Journal of Hydrogen Energy, 33, 1215–1220. https://doi.org/10.
1016/j.ijhydene.2007.12.044.
Wang, Z., Keshwani, D. R., Redding, A. P., & Cheng, J. J. (2010a).
Sodium hydroxide pretreatment and enzymatic hydrolysis of coastal
Bermuda grass. Bioresource Technology, 101, 3583–3585. https://
doi.org/10.1016/j.biortech.2009.12.097.
Wang, A., Gao, L., Ren, N., Xu, J., Liu, C., & Lee, D.-J. (2010b).
Enrichment strategy to select functional consortium from mixed
cultures: Consortium from rumen liquor for simultaneous cellulose
degradation and hydrogen production. International Journal of
Hydrogen Energy, 35, 13413–13418. https://doi.org/10.1016/j.
ijhydene.2009.11.117.
Bioconversion of Lignocellulosic Residues into Hydrogen
79
Integrating dark and light bio-hydrogen production strategies:
Towards the hydrogen economy. Reviews in Environmental Science
& Biotechnology, 8, 149–185. https://doi.org/10.1007/s11157-0089144-9.
Ren, N., Wang, A., Gao, L., Xin, L., Lee, D. J., & Su, A. (2008).
Bioaugmented hydrogen production from carboxymethyl cellulose
and partially delignified corn stalks using isolated cultures. International Journal of Hydrogen Energy, 33, 5250–5255. https://doi.
org/10.1016/j.ijhydene.2008.05.020.
Ren, N., Wang, A., Cao, G., Xu, J., & Gao, L. (2009). Bioconversion of
lignocellulosic biomass to hydrogen: Potential and challenges.
Biotechnology Advances, 27, 1051–1060. https://doi.org/10.1016/j.
biotechadv.2009.05.007.
Ren, N. Q., Zhao, L., Chen, C., Guo, W. Q., & Cao, G. L. (2016a).
A review on bioconversion of lignocellulosic biomass to H2: Key
challenges and new insights. Bioresource Technology, 215, 92–99.
https://doi.org/10.1016/j.biortech.2016.03.124.
Ren, C., Wang, W., Mao, Y., Yuan, X., Song, Z., Sun, J., et al. (2016b).
Comparative life cycle assessment of sulfoaluminate clinker
production derived from industrial solid wastes and conventional
raw materials. Journal of Cleaner Production. https://doi.org/10.
1016/j.jclepro.2017.05.184.
Salakkam, A., Plangklang, P., Sittijunda, S., Boonmee Kongkeitkajorn,
M., Lunprom, S., & Reungsang, A. (2019). Bio-hydrogen and
methane production from lignocellulosic materials. In Biomass
bioenergy—Recent trends future challenges. IntechOpen. https://
doi.org/10.5772/intechopen.85138.
Salimi, F., & Mahadevan, R. (2013). Characterizing metabolic
interactions in a clostridial co-culture for consolidated bioprocessing. BMC Biotechnology, 13, 95.
Seok, J., Lee, Y. Y., & Hyun, T. (2015). A review on alkaline
pretreatment technology for bioconversion of lignocellulosic
biomass. Bioresource Technology. https://doi.org/10.1016/j.
biortech.2015.08.085.
Sharma, A., & Arya, S. K. (2019). Photobiological production of
biohydrogen: Recent advances and strategy. Springer International
Publishing. https://doi.org/10.1007/978-3-030-14463-0_3.
Sheng, T., Gao, L., Zhao, L., Liu, W., & Wang, A. (2015). Direct
hydrogen production from lignocellulose by the newly isolated
Thermoanaerobacterium thermosaccharolyticum strain DD32. RSC
Advances, 5, 99781–99788. https://doi.org/10.1039/C5RA20000H.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass—An overview. Bioresource Technology,
199, 76–82. https://doi.org/10.1016/j.biortech.2015.08.030.
Sinha, P., & Pandey, A. (2011). An evaluative report and challenges for
fermentative biohydrogen production. International Journal of
Hydrogen Energy, 36, 7460–7478. https://doi.org/10.1016/j.
ijhydene.2011.03.077.
Skjånes, K., Andersen, U., Heidorn, T., & Borgvang, S. A. (2016).
Design and construction of a photobioreactor for hydrogen
production, including status in the field. Journal of Applied
Phycology, 28, 2205–2223. https://doi.org/10.1007/s10811-0160789-4.
Song, Z.-X., Li, X.-H., Li, W.-W., Bai, Y.-X., Fan, Y.-T., & Hou, H.W. (2014). Direct bioconversion of raw corn stalk to hydrogen by a
new strain Clostridium sp. FS3. Bioresource Technology, 157, 91–
97. https://doi.org/10.1016/j.biortech.2014.01.084.
Soni, S. K., & Soni, R. (2010). Regulation of cellulase synthesis in
Chaetomium erraticum. BioResources, 5(1), 81–98.
Su, H., Cheng, J., Zhou, J., Song, W., & Cen, K. (2009). Improving
hydrogen production from cassava starch by combination of dark
and photo fermentation. International Journal of Hydrogen Energy,
34, 1780–1786. https://doi.org/10.1016/j.ijhydene.2008.12.045.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83, 1–11.
https://doi.org/10.1016/S0960-8524(01)00212-7.
Sveshnikov, D., Sveshnikova, N., Rao, K., & Hall, D. (2006).
Hydrogen metabolism of mutant forms of Anabaena variabilis in
continuous cultures and under nutritional stress. FEMS Microbiology Letters, 147, 297–301. https://doi.org/10.1111/j.1574-6968.
1997.tb10257.x.
Taha, M., Shahsavari, E., Al-Hothaly, K., Mouradov, A., Smith, A. T.,
Ball, A. S., et al. (2015). Enhanced biological straw saccharification
through coculturing of lignocellulose-degrading microorganisms.
Applied Biochemistry and Biotechnology, 175, 3709–3728.
Talluri, S., Raj, S. M., & Christopher, L. P. (2013). Consolidated
bioprocessing of untreated switchgrass to hydrogen by the extreme
thermophile Caldicellulosiruptor saccharolyticus DSM 8903. Bioresource Technology, 139, 272–279. https://doi.org/10.1016/j.
biortech.2013.04.005.
Tapia-Venegas, E., Ramirez-Morales, J. E., Silva-Illanes, F.,
Toledo-Alarcón, J., Paillet, F., Escudie, R., et al. (2015). Biohydrogen production by dark fermentation: Scaling-up and technologies integration for a sustainable system. Reviews in Environmental
Science & Biotechnology, 14, 761–785. https://doi.org/10.1007/
s11157-015-9383-5.
Tian, Q.-Q., Liang, L., & Zhu, M.-J. (2015). Enhanced biohydrogen
production from sugarcane bagasse by Clostridium thermocellum
supplemented with CaCO 3 . Bioresource Technology, 197, 422–428.
https://doi.org/10.1016/j.biortech.2015.08.111.
Tiwari, M. S., Gawade, A. B., & Yadav, G. D. (2017). Magnetically
separable sulfated zirconia as highly active acidic catalysts for
selective synthesis of ethyl levulinate from furfuryl alcohol. Green
Chemistry, 19, 963–976. https://doi.org/10.1039/C6GC02466A.
Tiwari, M. S., Dicks, J. S., Keogh, J., Ranade, V. V., & Manyar, H. G.
(2020). Direct conversion of furfuryl alcohol to butyl levulinate using
tin exchanged tungstophosphoric acid catalysts. Molecular Catalysis,
488, 110918. https://doi.org/10.1016/j.mcat.2020.110918.
Trchounian, K., Sawers, R. G., & Trchounian, A. (2017). Improving
biohydrogen
productivity
by
microbial
darkand
photo-fermentations: Novel data and future approaches. Renewable
and Sustainable Energy Reviews, 80, 1201–1216. https://doi.org/10.
1016/j.rser.2017.05.149.
Ummalyma, S. B., Supriya, R. D., Sindhu, R., Binod, P., Nair, R. B.,
Pandey, A., & Gnansounou, E. (2019). Biological pretreatment of
lignocellulosic biomass—Current trends and future perspectives. In
Second and third generation of feedstocks (pp. 197–212). Elsevier.
https://doi.org/10.1016/B978-0-12-815162-4.00007-0.
Valdez-Vazquez, I., Pérez-Rangel, M., Tapia, A., Buitrón, G., Molina,
C., Hernández, G., et al. (2015). Hydrogen and butanol production
from native wheat straw by synthetic microbial consortia integrated
by species of Enterococcus and Clostridium. Fuel, 159, 214–222.
https://doi.org/10.1016/j.fuel.2015.06.052.
Wang, J., & Wan, W. (2008). Effect of Fe
2+ concentration on
fermentative hydrogen production by mixed cultures. International
Journal of Hydrogen Energy, 33, 1215–1220. https://doi.org/10.
1016/j.ijhydene.2007.12.044.
Wang, Z., Keshwani, D. R., Redding, A. P., & Cheng, J. J. (2010a).
Sodium hydroxide pretreatment and enzymatic hydrolysis of coastal
Bermuda grass. Bioresource Technology, 101, 3583–3585. https://
doi.org/10.1016/j.biortech.2009.12.097.
Wang, A., Gao, L., Ren, N., Xu, J., Liu, C., & Lee, D.-J. (2010b).
Enrichment strategy to select functional consortium from mixed
cultures: Consortium from rumen liquor for simultaneous cellulose
degradation and hydrogen production. International Journal of
Hydrogen Energy, 35, 13413–13418. https://doi.org/10.1016/j.
ijhydene.2009.11.117.
Bioconversion of Lignocellulosic Residues into Hydrogen
79
