In M. A. S. Bernardes (Ed.), Biofuel production-recent developments and prospects (pp. 225–246). InTech: Rijeka, Croatia.
Chaud, L. C. S., Silva, D. D. V., Felipe, M. G. A. (2012). Evaluation of
fermentative performance of Candida guilliermondii in sugarcane
bagasse hemicellulosic hydrolysate detoxified with activated charcoal or vegetal polymer. In A Mendez-Villas (Ed.), Microbes in
applied research: current advances and challenges. World Scientific Publishing Co. Pte. Ltd.; ISBN: 978-981-4405-03-4
Chi, C., Chang, H., Li, Z., Jameel, H., & Zhang, Z. (2013). A method
for rapid determination of sugars in lignocelluloses prehydrolyzate.
BioResources, 8, 172–181.
Chookaew, T., Prasertsan, P., & Ren, Z. J. (2014). Two-stage
conversion of crude glycerol to energy using dark fermentation
linked with microbial fuel cell or microbial electrolysis cell. New
Biotechnology, 31(2), 179–84.
Choudhary, J., Singh, S., & Nain, L. (2017). Bioprospecting thermotolerant ethanologenic yeasts for simultaneous saccharification and
fermentation from diverse environments. Journal of Bioscience and
Bioengineering, 123(3), 342–6.
Das, D., & Veziroglu, T. N. (2008). Advances in biological hydrogen
production processes. International Journal of Hydrogen Energy,
33, 6046–6057.
De Gioannis, G., Muntoni, A., Polettini, A., & Pomi, R. (2013).
A review of dark fermentative hydrogen production from
biodegradable municipal waste fractions. Waste Management 33
(6), 1345–1361. New York, N.Y.
Delbecq, F., Wang, Y., Muralidhara, A., El Ouardi, K., Marlair, G., &
Len, C. (2018). Hydrolysis of hemicellulose and derivatives—a
review of recent advances in the production of furfural. Frontiers in
Chemistry, 6, 146. https://doi.org/10.3389/fchem.2018.00146.
Egües, I., Sanchez, C., Mondragon, I., & Labidi, J. (2012). Effect of
alkaline and autohydrolysis processes on the purity of obtained
hemicelluloses from corn stalks. Bioresource Technology, 103(1),
239–248.
Elgharbawy, A. A., Alam, M. Z., Moniruzzaman, M., & Goto, M.
(2016). Ionic liquid pretreatment as emerging approaches for
enhanced enzymatic hydrolysis of lignocellulosic biomass. Biochemical Engineering Journal, 109, 252–267. https://doi.org/10.
1016/j.bej.2016.01.021.
Eroglu, E., & Melis, A. (2011). Photobiological hydrogen production:
Recent advances and state of the art. Bioresource Technology, 102
(18), 8403–13.
Farhat, W., Venditti, R. A., Hubbe, M., Taha, M., Becquart, F., &
Ayoub, A. (2017). A review of water-resistant hemicellulose-based
materials: Processing and applications. Chemsuschem, 10, 305–323.
Flórez-Pardo, L. M., González-Córdoba, A., & López-Galán, E. (2018).
Evaluation of different methods for efficient extraction of hemicelluloses leaves and tops of sugarcane. DYNA, 85(204), 18–27.
Froschauer, C., Hummel, M., Iakovlev, M., Roselli, A., Schottenberger,
H., & Sixta, H. (2013). Separation of hemicellulose and cellulose
from wood pulp by means of ionic liquid/cosolvent systems.
Biomacromolecules, 14(6), 1741–1750.
Giuseppe, P., Giulia, Z., Alessandra, F., Sergio, B., R, Samir, B. (2019).
Aqueous phase reforming of sugar-based biorefinery streams: from
the simplicity of model compounds to the complexity of real feeds.
Catalysis Today. https://doi.org/10.1016/j.cattod.2019.09.031.
Glazer, A. N., & Nikaido, H. (2007). Microbial biotechnology:
fundamentals of applied microbiology (2nd ed.). New York: W.H
Freeman and Company.
Gürtekin, E. (2014). Biological hydrogen production methods.
ISEM2014 Adiyaman–TURKEY.
Guwy, A. J., Dinsdale, R. M., Kim, J. R., Massanet-Nicolau, J., &
Premier, G. (2011). Fermentative biohydrogen production systems
integration. Bioresource Technology, 102(18), 8534–42.
Hallenbeck, P. C., & Benemann, J. R., Biohydrogen-The microbiological production of hydrogen fuel biotechnology–Vol.VII, Encyclopedia of Life Support Systems (EOLSS).
Hamelinck, C. N., van Hooijdonk, G., & Faaij, A. P. C. (2005). Ethanol
from lignocellulosic biomass: Techno-economic performance in
short-middle- and long-term. Biomass and Bioenergy, 28, 384–410.
Hasegawa, K. T., Okuma O., & Mae, K. (2004). New pretreatment
methods combining a hot water treatment and water / acetone
extraction for thermo-chemical conversion of biomass, 45(6), 755–
760
Hassan, S. S., Williams, G. A., & Jaiswal, A. K. (2018). Emerging
technologies for the pretreatment of lignocellulosic biomass.
Bioresource Technology, 262, 310–318. https://doi.org/10.1016/j.
biortech.2018.04.099.
Hendriks, A. T. W. M., & Zeeman, G. (2008). Pretreatments to enhance
the digestibility of lignocellulosic biomass. Bioresource Technology, 100, 10–18.
Hepbasli, A., Kalinci, Y., & Dincer, I. (2009). Biomass-based hydrogen
production: a review and analysis. International Journal of
Hydrogen Energy, 34, 8799–8817.
Hou-Rui, Z., Xiang-Xiang, Q., Silva, S. S., Sarrouh, B. F., Ai-Hua, C.,
Yu-Heng, Z., et al. (2009). Novel isolates for biological detoxification of lignocellulosic hydrolysate. Applied Biochemistry and
Biotechnology, 152, 199–212.
IRENA. (2018). Hydrogen from renewable power: Technology outlook
for the energy transition. Abu Dhabi: International Renewable
Energy Agency.
Jönsson, L. J., Alriksson, B., & Nilvebrant, N. (2013). Bioconversion
of lignocellulose: Inhibitors and detoxification. Biotechnology for
Biofuels, 6, 16.
Kanchanalai, P., Temani, G., Kawajiri, Y., & Realff, M. J. (2016).
Reaction kinetics of concentrated-acid hydrolysis for cellulose and
hemicellulose and effect of crystallinity. BioResources, 11(1),
1672–1689.
Kapdan, I. K., & Kargi, F. (2006). Bio-hydrogen production from waste
materials. Enzyme and Microbial Technology, 38, 569–582.
Karolina, K., Hubert, C., Piotr, R., Edyta, S., Rafał, Ł., Katarzyna, W.,
et al. (2019). Fermentative conversion of two-step pre-treated
lignocellulosic biomass to hydrogen. Catalysts, 9, 858.
Kumar, A. K., & Sharma, S. (2017). Recent updates on different
methods of pretreatment of lignocellulosic feedstocks: A review.
Bioresources and Bioprocessing, 4, 1–19. https://doi.org/10.1186/
s40643-017-0137-9.
Kumar, P., Barrett, D. M., Delwiche, M. J., & Stroeve, P. (2009).
Methods for pretreatment of lignocellulosic biomass for efficient
hydrolysis and biofuel production. Industrial and Engineering
Chemistry Research, 48, 3713–3729. https://doi.org/10.1021/
ie801542g.
Kuppam, C., Yong-Jik, L., & Dong-Woo, L. (2015). Biohydrogen
production: Strategies to improve process efficiency through
microbial routes. International Journal of Molecular Sciences, 16,
8266–8293. https://doi.org/10.3390/ijms1604826.
Kusmardini, D., Prasetyo, J., Saepudin, E., & Hudiyono, S. (2018).
Biohydrogen production through separate hydrolysis and fermentation and simultaneous saccharification and fermentation of empty
fruit bunch of palm oil. Research Journal of Chemistry and
Environment, 22(Special Issue II), 193–197.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L.
(2010). Acid hydrolysis of sugarcane bagasse for lactic acid
production. Bioresource Technology, 101(3), 1036–1043.
Lawther, J. M., Sun, R., & Banks, W. (1996). Effects of extraction
conditions and alkali type on yield and composition of wheat
straw hemicellulose. Journal of Applied Polymer Science, 60,
1827–1837.
Application of Hemicellulose in Biohydrogen Production
325
Chaud, L. C. S., Silva, D. D. V., Felipe, M. G. A. (2012). Evaluation of
fermentative performance of Candida guilliermondii in sugarcane
bagasse hemicellulosic hydrolysate detoxified with activated charcoal or vegetal polymer. In A Mendez-Villas (Ed.), Microbes in
applied research: current advances and challenges. World Scientific Publishing Co. Pte. Ltd.; ISBN: 978-981-4405-03-4
Chi, C., Chang, H., Li, Z., Jameel, H., & Zhang, Z. (2013). A method
for rapid determination of sugars in lignocelluloses prehydrolyzate.
BioResources, 8, 172–181.
Chookaew, T., Prasertsan, P., & Ren, Z. J. (2014). Two-stage
conversion of crude glycerol to energy using dark fermentation
linked with microbial fuel cell or microbial electrolysis cell. New
Biotechnology, 31(2), 179–84.
Choudhary, J., Singh, S., & Nain, L. (2017). Bioprospecting thermotolerant ethanologenic yeasts for simultaneous saccharification and
fermentation from diverse environments. Journal of Bioscience and
Bioengineering, 123(3), 342–6.
Das, D., & Veziroglu, T. N. (2008). Advances in biological hydrogen
production processes. International Journal of Hydrogen Energy,
33, 6046–6057.
De Gioannis, G., Muntoni, A., Polettini, A., & Pomi, R. (2013).
A review of dark fermentative hydrogen production from
biodegradable municipal waste fractions. Waste Management 33
(6), 1345–1361. New York, N.Y.
Delbecq, F., Wang, Y., Muralidhara, A., El Ouardi, K., Marlair, G., &
Len, C. (2018). Hydrolysis of hemicellulose and derivatives—a
review of recent advances in the production of furfural. Frontiers in
Chemistry, 6, 146. https://doi.org/10.3389/fchem.2018.00146.
Egües, I., Sanchez, C., Mondragon, I., & Labidi, J. (2012). Effect of
alkaline and autohydrolysis processes on the purity of obtained
hemicelluloses from corn stalks. Bioresource Technology, 103(1),
239–248.
Elgharbawy, A. A., Alam, M. Z., Moniruzzaman, M., & Goto, M.
(2016). Ionic liquid pretreatment as emerging approaches for
enhanced enzymatic hydrolysis of lignocellulosic biomass. Biochemical Engineering Journal, 109, 252–267. https://doi.org/10.
1016/j.bej.2016.01.021.
Eroglu, E., & Melis, A. (2011). Photobiological hydrogen production:
Recent advances and state of the art. Bioresource Technology, 102
(18), 8403–13.
Farhat, W., Venditti, R. A., Hubbe, M., Taha, M., Becquart, F., &
Ayoub, A. (2017). A review of water-resistant hemicellulose-based
materials: Processing and applications. Chemsuschem, 10, 305–323.
Flórez-Pardo, L. M., González-Córdoba, A., & López-Galán, E. (2018).
Evaluation of different methods for efficient extraction of hemicelluloses leaves and tops of sugarcane. DYNA, 85(204), 18–27.
Froschauer, C., Hummel, M., Iakovlev, M., Roselli, A., Schottenberger,
H., & Sixta, H. (2013). Separation of hemicellulose and cellulose
from wood pulp by means of ionic liquid/cosolvent systems.
Biomacromolecules, 14(6), 1741–1750.
Giuseppe, P., Giulia, Z., Alessandra, F., Sergio, B., R, Samir, B. (2019).
Aqueous phase reforming of sugar-based biorefinery streams: from
the simplicity of model compounds to the complexity of real feeds.
Catalysis Today. https://doi.org/10.1016/j.cattod.2019.09.031.
Glazer, A. N., & Nikaido, H. (2007). Microbial biotechnology:
fundamentals of applied microbiology (2nd ed.). New York: W.H
Freeman and Company.
Gürtekin, E. (2014). Biological hydrogen production methods.
ISEM2014 Adiyaman–TURKEY.
Guwy, A. J., Dinsdale, R. M., Kim, J. R., Massanet-Nicolau, J., &
Premier, G. (2011). Fermentative biohydrogen production systems
integration. Bioresource Technology, 102(18), 8534–42.
Hallenbeck, P. C., & Benemann, J. R., Biohydrogen-The microbiological production of hydrogen fuel biotechnology–Vol.VII, Encyclopedia of Life Support Systems (EOLSS).
Hamelinck, C. N., van Hooijdonk, G., & Faaij, A. P. C. (2005). Ethanol
from lignocellulosic biomass: Techno-economic performance in
short-middle- and long-term. Biomass and Bioenergy, 28, 384–410.
Hasegawa, K. T., Okuma O., & Mae, K. (2004). New pretreatment
methods combining a hot water treatment and water / acetone
extraction for thermo-chemical conversion of biomass, 45(6), 755–
760
Hassan, S. S., Williams, G. A., & Jaiswal, A. K. (2018). Emerging
technologies for the pretreatment of lignocellulosic biomass.
Bioresource Technology, 262, 310–318. https://doi.org/10.1016/j.
biortech.2018.04.099.
Hendriks, A. T. W. M., & Zeeman, G. (2008). Pretreatments to enhance
the digestibility of lignocellulosic biomass. Bioresource Technology, 100, 10–18.
Hepbasli, A., Kalinci, Y., & Dincer, I. (2009). Biomass-based hydrogen
production: a review and analysis. International Journal of
Hydrogen Energy, 34, 8799–8817.
Hou-Rui, Z., Xiang-Xiang, Q., Silva, S. S., Sarrouh, B. F., Ai-Hua, C.,
Yu-Heng, Z., et al. (2009). Novel isolates for biological detoxification of lignocellulosic hydrolysate. Applied Biochemistry and
Biotechnology, 152, 199–212.
IRENA. (2018). Hydrogen from renewable power: Technology outlook
for the energy transition. Abu Dhabi: International Renewable
Energy Agency.
Jönsson, L. J., Alriksson, B., & Nilvebrant, N. (2013). Bioconversion
of lignocellulose: Inhibitors and detoxification. Biotechnology for
Biofuels, 6, 16.
Kanchanalai, P., Temani, G., Kawajiri, Y., & Realff, M. J. (2016).
Reaction kinetics of concentrated-acid hydrolysis for cellulose and
hemicellulose and effect of crystallinity. BioResources, 11(1),
1672–1689.
Kapdan, I. K., & Kargi, F. (2006). Bio-hydrogen production from waste
materials. Enzyme and Microbial Technology, 38, 569–582.
Karolina, K., Hubert, C., Piotr, R., Edyta, S., Rafał, Ł., Katarzyna, W.,
et al. (2019). Fermentative conversion of two-step pre-treated
lignocellulosic biomass to hydrogen. Catalysts, 9, 858.
Kumar, A. K., & Sharma, S. (2017). Recent updates on different
methods of pretreatment of lignocellulosic feedstocks: A review.
Bioresources and Bioprocessing, 4, 1–19. https://doi.org/10.1186/
s40643-017-0137-9.
Kumar, P., Barrett, D. M., Delwiche, M. J., & Stroeve, P. (2009).
Methods for pretreatment of lignocellulosic biomass for efficient
hydrolysis and biofuel production. Industrial and Engineering
Chemistry Research, 48, 3713–3729. https://doi.org/10.1021/
ie801542g.
Kuppam, C., Yong-Jik, L., & Dong-Woo, L. (2015). Biohydrogen
production: Strategies to improve process efficiency through
microbial routes. International Journal of Molecular Sciences, 16,
8266–8293. https://doi.org/10.3390/ijms1604826.
Kusmardini, D., Prasetyo, J., Saepudin, E., & Hudiyono, S. (2018).
Biohydrogen production through separate hydrolysis and fermentation and simultaneous saccharification and fermentation of empty
fruit bunch of palm oil. Research Journal of Chemistry and
Environment, 22(Special Issue II), 193–197.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L.
(2010). Acid hydrolysis of sugarcane bagasse for lactic acid
production. Bioresource Technology, 101(3), 1036–1043.
Lawther, J. M., Sun, R., & Banks, W. (1996). Effects of extraction
conditions and alkali type on yield and composition of wheat
straw hemicellulose. Journal of Applied Polymer Science, 60,
1827–1837.
Application of Hemicellulose in Biohydrogen Production
325
