Jiang, Y., Lu, J., Lv, Y., Wu, R., Dong, W., Zhou, J., Jiang, M., & Xin,
F. (2019). Efficient hydrogen production from lignocellulosic
feedstocks by a newly isolated thermophlic Thermoanaerobacterium
sp. strain F6. International Journal of Hydrogen Energy, 44,
14380–14386. https://doi.org/10.1016/j.ijhydene.2019.01.226.
Jung, M. Y., Jung, H. M., Lee, J., & Oh, M. K. (2015). Alleviation of
carbon catabolite repression in Enterobacter aerogenes for efficient
utilization of sugarcane molasses for 2,3-butanediol production.
Biotechnology for Biofuels, 8. https://doi.org/10.1186/s13068-0150290-3.
Kadier, A., Simayi, Y., Abdeshahian, P., Azman, N. F., Chandrasekhar,
K., & Kalil, M. S. (2016). A comprehensive review of microbial
electrolysis cells (MEC) reactor designs and configurations for
sustainable hydrogen gas production. Alexandria Engineering
Journal, 55, 427–443. https://doi.org/10.1016/j.aej.2015.10.008.
Kawagoshi, Y., Oki, Y., Nakano, I., Fujimoto, A., & Takahashi, H.
(2010). Biohydrogen production by isolated halotolerant photosynthetic bacteria using long-wavelength light-emitting diode
(LW-LED). International Journal of Hydrogen Energy, 35,
13365–13369. https://doi.org/10.1016/j.ijhydene.2009.11.121.
Kim, M., Yang, Y., Morikawa-Sakura, M. S., Wang, Q., Lee, M. V.,
Lee, D.-Y., et al. (2012a). Hydrogen production by anaerobic
co-digestion of rice straw and sewage sludge. International Journal
of Hydrogen Energy, 37, 3142–3149. https://doi.org/10.1016/j.
ijhydene.2011.10.116.
Kim, M.-S., Kim, D.-H., Cha, J., & Lee, J. K. (2012b). Effect of carbon
and nitrogen sources on photo-fermentative H2 production associated with nitrogenase, uptake hydrogenase activity, and PHB
accumulation in Rhodobacter sphaeroides KD131. Bioresource
Technology, 116, 179–183. https://doi.org/10.1016/j.biortech.2012.
04.011.
Kirakosyan, G., Trchounian, K., Vardanyan, Z., & Trchounian, A.
(2008). Copper (II) ions affect Escherichia coli membrane vesicles’
SH-groups and a disulfide-dithiol interchange between membrane
proteins. Cell Biochemistry and Biophysics, 51, 45–50. https://doi.
org/10.1007/s12013-008-9014-7.
Ko, J. K., Kim, Y., Ximenes, E., & Ladisch, M. R. (2015). Effect of
liquid hot water pretreatment severity on properties of hardwood
lignin and enzymatic hydrolysis of cellulose. Biotechnology and
Bioengineering, 112, 252–262. https://doi.org/10.1002/bit.25349.
Kosourov, S., Tsygankov, A., Seibert, M., & Ghirardi, M. L. (2002).
Sustained hydrogen photoproduction by Chlamydomonas reinhardtii: Effects of culture parameters. Biotechnology and Bioengineering, 78, 731–740. https://doi.org/10.1002/bit.10254.
Kucharska, K., Cieśliński, H., Rybarczyk, P., Słupek, E., Łukajtis, R.,
Wychodnik, K., & Kamiński, M. (2019). Fermentative conversion
of two-step pre-treated lignocellulosic biomass to hydrogen.
Catalysts, 9 (2019). https://doi.org/10.3390/catal9100858.
Kumar, A. K., & Sharma, S. (2017). Recent updates on different
methods of pretreatment of lignocellulosic feedstocks: A review.
Bioresources and Bioprocessing, 4. https://doi.org/10.1186/s40643017-0137-9.
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.
Kumar, G., Bakonyi, P., Periyasamy, S., Kim, S. H., Nemestóthy, N., &
Bélafi-Bakó, K. (2015). Lignocellulose biohydrogen: Practical
challenges and recent progress. Renewable and Sustainable Energy
Reviews, 44, 728–737. https://doi.org/10.1016/j.rser.2015.01.042.
Ladanai, S., & Vinterbäck, J. (2009). Global potential of sustainable
biomass for energy. SLU, Swedish University of Agricultural
Sciences Department of Energy and Technology, Uppsala
Ladisch, M. R., Lin, K. W., Voloch, M., & Tsao, G. T. (1983). Process
considerations in the enzymatic hydrolysis of biomass. Enyzme and
Microbial Technology, 5, 82–102. https://doi.org/10.1016/01410229(83)90042-X.
Laurinavichene, T. V., Laurinavichius, K. S., & Tsygankov, A. A.
(2014). Integration of purple non-sulfur bacteria into the
starch-hydrolyzing consortium. International Journal of Hydrogen
Energy, 39, 7713–7720. https://doi.org/10.1016/j.ijhydene.2014.03.
088.
Lay, C. H., Sung, I. Y., Kumar, G., Chu, C. Y., Chen, C. C., & Lin, C.
Y. (2012). Optimizing biohydrogen production from mushroom
cultivation waste using anaerobic mixed cultures. International
Journal of Hydrogen Energy, Pergamon, 16473–16478. https://doi.
org/10.1016/j.ijhydene.2012.02.135.
Lechner, B. E., & Papinutti, V. L. (2006). Production of lignocellulosic
enzymes during growth and fruiting of the edible fungus Lentinus
tigrinus on wheat straw. Process Biochemistry, 41, 594–598. https://
doi.org/10.1016/j.procbio.2005.08.004.
Lee, C.-M., Chen, P.-C., Wang, C.-C., & Tung, Y.-C. (2002).
Photohydrogen production using purple nonsulfur bacteria with
hydrogen fermentation reactor eeuent. Retrieved May 25, 2020,
from www.elsevier.com/locate/ijhydene.
Levin, D. B., Pitt, L., & Love, M. (2004). Biohydrogen production:
Prospects and limitations to practical application. International
Journal of Hydrogen Energy, 29, 173–185. https://doi.org/10.1016/
S0360-3199(03)00094-6.
Li, R. Y., & Fang, H. H. P. (2009). Heterotrophic photo fermentative
hydrogen production. Critical Reviews in Environment Science
and Technology, 39, 1081–1108. https://doi.org/10.1080/
10643380802009835.
Li, X., Dai, Z. Z., Wang, Y. H., & Zhang, S. L. (2011). Enhancement of
phototrophic hydrogen production by Rhodobacter sphaeroides
ZX-5 using fed-batch operation based on ORP level. International
Journal of Hydrogen Energy, 36, 12794–12802. https://doi.org/10.
1016/j.ijhydene.2011.07.070.
Li, H.-Q., Jiang, W., Jia, J.-X., & Xu, J. (2014). pH pre-corrected liquid
hot water pretreatment on corn stover with high hemicellulose
recovery and low inhibitors formation. Bioresource Technology,
153, 292–299. https://doi.org/10.1016/j.biortech.2013.11.089.
Lin, C. (2004). Carbon/nitrogen-ratio effect on fermentative hydrogen
production by mixed microflora. International Journal of Hydrogen
Energy, 29, 41–45. https://doi.org/10.1016/S0360-3199(03)00083-1
.
Lin, H.-N., Wang, Y.-T., & Zhu, M.-J. (2017). Evaluation of spent
mushroom compost as a lignocellulosic substrate for hydrogen
production by Clostridium thermocellum. International Journal of
Hydrogen Energy, 42, 26687–26694. https://doi.org/10.1016/j.
ijhydene.2017.09.040.
Literature review of physical and chemical pretreatment processes for
lignocellulosic biomass. (n.d.). Retrieved August 6, 2019, from
https://library.wur.nl/WebQuery/wurpubs/396201.
Liu, Y., Yu, P., Song, X., & Qu, Y. (2008). Hydrogen production from
cellulose by co-culture of Clostridium thermocellum JN4 and
Thermoanaerobacterium thermosaccharolyticum GD17. International Journal of Hydrogen Energy, 33, 2927–2933. https://doi.
org/10.1016/j.ijhydene.2008.04.004.
Liu, Q., Li, W., Ma, Q., An, S., Li, M., Jameel, H., et al. (2016).
Pretreatment of corn stover for sugar production using a two-stage
dilute acid followed by wet-milling pretreatment process. Bioresource Technology, 211, 435–442. https://doi.org/10.1016/j.
biortech.2016.03.131.
Lo, Y.-C., Bai, M.-D., Chen, W.-M., & Chang, J.-S. (2008). Cellulosic
hydrogen production with a sequencing bacterial hydrolysis and
dark fermentation strategy. Bioresource Technology, 99, 8299–
8303. https://doi.org/10.1016/j.biortech.2008.03.004.
Lu, H., & Lee, P. K. H. (2015). Effects of cellulose concentrations on
the syntrophic interactions between Clostridium cellulovorans 743B
Bioconversion of Lignocellulosic Residues into Hydrogen
77
F. (2019). Efficient hydrogen production from lignocellulosic
feedstocks by a newly isolated thermophlic Thermoanaerobacterium
sp. strain F6. International Journal of Hydrogen Energy, 44,
14380–14386. https://doi.org/10.1016/j.ijhydene.2019.01.226.
Jung, M. Y., Jung, H. M., Lee, J., & Oh, M. K. (2015). Alleviation of
carbon catabolite repression in Enterobacter aerogenes for efficient
utilization of sugarcane molasses for 2,3-butanediol production.
Biotechnology for Biofuels, 8. https://doi.org/10.1186/s13068-0150290-3.
Kadier, A., Simayi, Y., Abdeshahian, P., Azman, N. F., Chandrasekhar,
K., & Kalil, M. S. (2016). A comprehensive review of microbial
electrolysis cells (MEC) reactor designs and configurations for
sustainable hydrogen gas production. Alexandria Engineering
Journal, 55, 427–443. https://doi.org/10.1016/j.aej.2015.10.008.
Kawagoshi, Y., Oki, Y., Nakano, I., Fujimoto, A., & Takahashi, H.
(2010). Biohydrogen production by isolated halotolerant photosynthetic bacteria using long-wavelength light-emitting diode
(LW-LED). International Journal of Hydrogen Energy, 35,
13365–13369. https://doi.org/10.1016/j.ijhydene.2009.11.121.
Kim, M., Yang, Y., Morikawa-Sakura, M. S., Wang, Q., Lee, M. V.,
Lee, D.-Y., et al. (2012a). Hydrogen production by anaerobic
co-digestion of rice straw and sewage sludge. International Journal
of Hydrogen Energy, 37, 3142–3149. https://doi.org/10.1016/j.
ijhydene.2011.10.116.
Kim, M.-S., Kim, D.-H., Cha, J., & Lee, J. K. (2012b). Effect of carbon
and nitrogen sources on photo-fermentative H2 production associated with nitrogenase, uptake hydrogenase activity, and PHB
accumulation in Rhodobacter sphaeroides KD131. Bioresource
Technology, 116, 179–183. https://doi.org/10.1016/j.biortech.2012.
04.011.
Kirakosyan, G., Trchounian, K., Vardanyan, Z., & Trchounian, A.
(2008). Copper (II) ions affect Escherichia coli membrane vesicles’
SH-groups and a disulfide-dithiol interchange between membrane
proteins. Cell Biochemistry and Biophysics, 51, 45–50. https://doi.
org/10.1007/s12013-008-9014-7.
Ko, J. K., Kim, Y., Ximenes, E., & Ladisch, M. R. (2015). Effect of
liquid hot water pretreatment severity on properties of hardwood
lignin and enzymatic hydrolysis of cellulose. Biotechnology and
Bioengineering, 112, 252–262. https://doi.org/10.1002/bit.25349.
Kosourov, S., Tsygankov, A., Seibert, M., & Ghirardi, M. L. (2002).
Sustained hydrogen photoproduction by Chlamydomonas reinhardtii: Effects of culture parameters. Biotechnology and Bioengineering, 78, 731–740. https://doi.org/10.1002/bit.10254.
Kucharska, K., Cieśliński, H., Rybarczyk, P., Słupek, E., Łukajtis, R.,
Wychodnik, K., & Kamiński, M. (2019). Fermentative conversion
of two-step pre-treated lignocellulosic biomass to hydrogen.
Catalysts, 9 (2019). https://doi.org/10.3390/catal9100858.
Kumar, A. K., & Sharma, S. (2017). Recent updates on different
methods of pretreatment of lignocellulosic feedstocks: A review.
Bioresources and Bioprocessing, 4. https://doi.org/10.1186/s40643017-0137-9.
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.
Kumar, G., Bakonyi, P., Periyasamy, S., Kim, S. H., Nemestóthy, N., &
Bélafi-Bakó, K. (2015). Lignocellulose biohydrogen: Practical
challenges and recent progress. Renewable and Sustainable Energy
Reviews, 44, 728–737. https://doi.org/10.1016/j.rser.2015.01.042.
Ladanai, S., & Vinterbäck, J. (2009). Global potential of sustainable
biomass for energy. SLU, Swedish University of Agricultural
Sciences Department of Energy and Technology, Uppsala
Ladisch, M. R., Lin, K. W., Voloch, M., & Tsao, G. T. (1983). Process
considerations in the enzymatic hydrolysis of biomass. Enyzme and
Microbial Technology, 5, 82–102. https://doi.org/10.1016/01410229(83)90042-X.
Laurinavichene, T. V., Laurinavichius, K. S., & Tsygankov, A. A.
(2014). Integration of purple non-sulfur bacteria into the
starch-hydrolyzing consortium. International Journal of Hydrogen
Energy, 39, 7713–7720. https://doi.org/10.1016/j.ijhydene.2014.03.
088.
Lay, C. H., Sung, I. Y., Kumar, G., Chu, C. Y., Chen, C. C., & Lin, C.
Y. (2012). Optimizing biohydrogen production from mushroom
cultivation waste using anaerobic mixed cultures. International
Journal of Hydrogen Energy, Pergamon, 16473–16478. https://doi.
org/10.1016/j.ijhydene.2012.02.135.
Lechner, B. E., & Papinutti, V. L. (2006). Production of lignocellulosic
enzymes during growth and fruiting of the edible fungus Lentinus
tigrinus on wheat straw. Process Biochemistry, 41, 594–598. https://
doi.org/10.1016/j.procbio.2005.08.004.
Lee, C.-M., Chen, P.-C., Wang, C.-C., & Tung, Y.-C. (2002).
Photohydrogen production using purple nonsulfur bacteria with
hydrogen fermentation reactor eeuent. Retrieved May 25, 2020,
from www.elsevier.com/locate/ijhydene.
Levin, D. B., Pitt, L., & Love, M. (2004). Biohydrogen production:
Prospects and limitations to practical application. International
Journal of Hydrogen Energy, 29, 173–185. https://doi.org/10.1016/
S0360-3199(03)00094-6.
Li, R. Y., & Fang, H. H. P. (2009). Heterotrophic photo fermentative
hydrogen production. Critical Reviews in Environment Science
and Technology, 39, 1081–1108. https://doi.org/10.1080/
10643380802009835.
Li, X., Dai, Z. Z., Wang, Y. H., & Zhang, S. L. (2011). Enhancement of
phototrophic hydrogen production by Rhodobacter sphaeroides
ZX-5 using fed-batch operation based on ORP level. International
Journal of Hydrogen Energy, 36, 12794–12802. https://doi.org/10.
1016/j.ijhydene.2011.07.070.
Li, H.-Q., Jiang, W., Jia, J.-X., & Xu, J. (2014). pH pre-corrected liquid
hot water pretreatment on corn stover with high hemicellulose
recovery and low inhibitors formation. Bioresource Technology,
153, 292–299. https://doi.org/10.1016/j.biortech.2013.11.089.
Lin, C. (2004). Carbon/nitrogen-ratio effect on fermentative hydrogen
production by mixed microflora. International Journal of Hydrogen
Energy, 29, 41–45. https://doi.org/10.1016/S0360-3199(03)00083-1
.
Lin, H.-N., Wang, Y.-T., & Zhu, M.-J. (2017). Evaluation of spent
mushroom compost as a lignocellulosic substrate for hydrogen
production by Clostridium thermocellum. International Journal of
Hydrogen Energy, 42, 26687–26694. https://doi.org/10.1016/j.
ijhydene.2017.09.040.
Literature review of physical and chemical pretreatment processes for
lignocellulosic biomass. (n.d.). Retrieved August 6, 2019, from
https://library.wur.nl/WebQuery/wurpubs/396201.
Liu, Y., Yu, P., Song, X., & Qu, Y. (2008). Hydrogen production from
cellulose by co-culture of Clostridium thermocellum JN4 and
Thermoanaerobacterium thermosaccharolyticum GD17. International Journal of Hydrogen Energy, 33, 2927–2933. https://doi.
org/10.1016/j.ijhydene.2008.04.004.
Liu, Q., Li, W., Ma, Q., An, S., Li, M., Jameel, H., et al. (2016).
Pretreatment of corn stover for sugar production using a two-stage
dilute acid followed by wet-milling pretreatment process. Bioresource Technology, 211, 435–442. https://doi.org/10.1016/j.
biortech.2016.03.131.
Lo, Y.-C., Bai, M.-D., Chen, W.-M., & Chang, J.-S. (2008). Cellulosic
hydrogen production with a sequencing bacterial hydrolysis and
dark fermentation strategy. Bioresource Technology, 99, 8299–
8303. https://doi.org/10.1016/j.biortech.2008.03.004.
Lu, H., & Lee, P. K. H. (2015). Effects of cellulose concentrations on
the syntrophic interactions between Clostridium cellulovorans 743B
Bioconversion of Lignocellulosic Residues into Hydrogen
77
