Sharma, H. K., Xu, C., & Qin, W. (2019). Biological pretreatment of
lignocellulosic biomass for biofuels and bioproducts: An overview.
Waste and Biomass Valorization, 10(2), 235–251.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass–An overview. Bioresource Technology,
2016(199), 76–82. https://doi.org/10.1016/j.biortech.2015.08.030.
Stern, A. G. (2018). A new sustainable hydrogen clean energy
paradigm. International Journal of Hydrogen Energy, 43(9), 4244–
4255.
Sun, S., Tian, H., Zhao, Y., Sun, R., & Zhou, H. (2010). Experimental
and numerical study of biomass flash pyrolysis in an entrained flow
reactor. Bioresource Technology, 101(10), 3678–3684. https://doi.
org/10.1016/j.biortech.2009.12.092.
Sun, S., Sun, S., Cao, X., & Sun, R. (2016). The role of pretreatment in
improving the enzymatic hydrolysis of lignocellulosic materials.
Bioresource Technology, 2016(199), 49–58.
Sun, Y., He, J., Yang, G., Sun, G., & Sage, V. (2019). A review of the
enhancement of bio-hydrogen generation by chemicals addition.
Catalysts, 9(4), 353.
Sveshnikov, D., Sveshnikova, N., Rao, K., & Hall, D. (1997).
Hydrogen metabolism of mutant forms of Anabaena variabilis in
continuous cultures and under nutritional stress. FEMS Microbiology Letters, 147(2), 297–301.
Swatloski, R. P., Spear, S. K., Holbrey, J. D., & Rogers, R. D. (2002).
Dissolution of cellose with ionic liquids. Journal of the American
Chemical Society, 124(18), 4974–4975.
Tamburic, B., Zemichael, F. W., Maitland, G. C., & Hellgardt, K.
(2011). Parameters affecting the growth and hydrogen production of
the green alga Chlamydomonas reinhardtii. International Journal of
Hydrogen Energy, 36(13), 7872–7876.
Tao, Y., Chen, Y., Wu, Y., He, Y., & Zhou, Z. (2007). High hydrogen
yield from a two-step process of dark- and photo-fermentation of
sucrose. International Journal of Hydrogen Energy, 32(2), 200–
206. https://doi.org/10.1016/j.ijhydene.2006.06.034.
Thomas, H., Armstrong, F., Brandon, N., David, B., Barron, A.,
Durrant, J., et al. (2018). Options for producing low-carbon
hydrogen at scale. London: The Royal Society.
Toledo-Alarcón, J., Capson-Tojo, G., Marone, A., Paillet, F., Júnior, A.
D. N. F., & Chatellard, L. et al. (2018). Basics of bio-hydrogen
production by dark fermentation. In Q Liao, J. -S. Chang, C
Herrmann, A Xia (Eds.), Bioreactors for Microbial Biomass and
Energy Conversion (pp. 199–220). Singapore: Springer Singapore.
T-Raissi, A., Block, D. L. (2004). Hydrogen: Automotive fuel of the
future. IEEE Power and Energy Magazine 2(6), 40–5.
Upton, B. M., & Kasko, A. M. (2016). Strategies for the conversion of
lignin to high-value polymeric materials: Review and perspective.
Chemical Reviews, 116(4), 2275–2306.
Verhaart, M. R., Bielen, A. A., Oost, J. V. D., Stams, A. J., & Kengen,
S. W. (2010) Hydrogen production by hyperthermophilic and
extremely thermophilic bacteria and archaea: Mechanisms for
reductant disposal. Environmental Technology 31(8–9), 993–1003.
Wahid, R., Hjorth, M., Kristensen, S., & Møller, H. B. (2015).
Extrusion as pretreatment for boosting methane production: Effect
of screw configurations. Energy & Fuels, 29(7), 4030–4037.
Willquist, K., Pawar, S. S., & Van Niel, E. W. (2011). Reassessment of
hydrogen tolerance in Caldicellulosiruptor saccharolyticus. Microbial Cell Factories, 10(1), 111.
Worden, J. R., Bloom, A. A., Pandey, S., Jiang, Z., Worden, H. M.,
Walker, T. W., et al. (2017). Reduced biomass burning emissions
reconcile conflicting estimates of the post-2006 atmospheric
methane budget. Nature Communications, 8(1), 2227.
Xu, Z. (2007). Chapter 21-Biological Production of Hydrogen from
Renewable Resources. In S.-T. Yang (Ed.), Bioprocessing for
value-added products from renewable resources (pp. 527–557).
Amsterdam: Elsevier.
Xu, N., Liu, S., Xin, F., Zhou, J., Jia, H., Xu, J., et al. (2019).
Biomethane production from lignocellulose: Biomass recalcitrance
and its impacts on anaerobic digestion. Frontiers in Bioengineering
and Biotechnology, 7(191), 1–12. https://doi.org/10.3389/fbioe.
2019.00191.
Yu, J., & Takahashi, P. (2007) Biophotolysis-based hydrogen production by cyanobacteria and green microalgae. In A. M. Vilas (Ed.),
Communicating current research and educational topics and trends
in applied microbiology. Formatex (pp. 79–89).
Yu, H.-T., Chen, B.-Y., Li, B.-Y., Tseng, M.-C., Han, C.-C., & Shyu,
S.-G. (2018). Efficient pretreatment of lignocellulosic biomass with
high recovery of solid lignin and fermentable sugars using Fenton
reaction in a mixed solvent. Biotechnology for Biofuels, 11(1), 287.
Zagrodnik, R., & Laniecki, M. (2015). The role of pH control on
biohydrogen production by single stage hybrid dark-and
photo-fermentation. Bioresource Technology, 194, 187–195.
https://doi.org/10.1016/j.biortech.2015.07.028.
Zámocký, M., Gasselhuber, B., Furtmüller, P. G., & Obinger, C.
(2014). Turning points in the evolution of peroxidase–catalase
superfamily: molecular phylogeny of hybrid heme peroxidases.
Cellular and Molecular Life Sciences, 71(23), 4681–4696. https://
doi.org/10.1007/s00018-014-1643-y.
Zdanowicz, M., Wilpiszewska, K., & Spychaj, T. (2018). Deep eutectic
solvents for polysaccharides processing. A review. Carbohydrate
Polymers, 200, 361–380. https://doi.org/10.1016/j.carbpol.2018.07.
078.
Zhang, F., Ge, Z., Grimaud, J., Hurst, J., & He, Z. (2013). Long-term
performance of liter-scale microbial fuel cells treating primary
effluent installed in a municipal wastewater treatment facility.
Environmental Science & Technology, 47(9), 4941–4948.
Zheng, Y., Zhao, J., Xu, F., & Li, Y. (2014). Pretreatment of
lignocellulosic biomass for enhanced biogas production. Progress
in Energy and Combustion Science, 2014(42), 35–53. https://doi.
org/10.1016/j.pecs.2014.01.001.
Zhuang, X., Wang, W., Yu, Q., Qi, W., Wang, Q., Tan, X., et al.
(2016). Liquid hot water pretreatment of lignocellulosic biomass for
bioethanol production accompanying with high valuable products.
Bioresource Technology, 199, 68–75.
280
J. R. Khatiwada et al.
lignocellulosic biomass for biofuels and bioproducts: An overview.
Waste and Biomass Valorization, 10(2), 235–251.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass–An overview. Bioresource Technology,
2016(199), 76–82. https://doi.org/10.1016/j.biortech.2015.08.030.
Stern, A. G. (2018). A new sustainable hydrogen clean energy
paradigm. International Journal of Hydrogen Energy, 43(9), 4244–
4255.
Sun, S., Tian, H., Zhao, Y., Sun, R., & Zhou, H. (2010). Experimental
and numerical study of biomass flash pyrolysis in an entrained flow
reactor. Bioresource Technology, 101(10), 3678–3684. https://doi.
org/10.1016/j.biortech.2009.12.092.
Sun, S., Sun, S., Cao, X., & Sun, R. (2016). The role of pretreatment in
improving the enzymatic hydrolysis of lignocellulosic materials.
Bioresource Technology, 2016(199), 49–58.
Sun, Y., He, J., Yang, G., Sun, G., & Sage, V. (2019). A review of the
enhancement of bio-hydrogen generation by chemicals addition.
Catalysts, 9(4), 353.
Sveshnikov, D., Sveshnikova, N., Rao, K., & Hall, D. (1997).
Hydrogen metabolism of mutant forms of Anabaena variabilis in
continuous cultures and under nutritional stress. FEMS Microbiology Letters, 147(2), 297–301.
Swatloski, R. P., Spear, S. K., Holbrey, J. D., & Rogers, R. D. (2002).
Dissolution of cellose with ionic liquids. Journal of the American
Chemical Society, 124(18), 4974–4975.
Tamburic, B., Zemichael, F. W., Maitland, G. C., & Hellgardt, K.
(2011). Parameters affecting the growth and hydrogen production of
the green alga Chlamydomonas reinhardtii. International Journal of
Hydrogen Energy, 36(13), 7872–7876.
Tao, Y., Chen, Y., Wu, Y., He, Y., & Zhou, Z. (2007). High hydrogen
yield from a two-step process of dark- and photo-fermentation of
sucrose. International Journal of Hydrogen Energy, 32(2), 200–
206. https://doi.org/10.1016/j.ijhydene.2006.06.034.
Thomas, H., Armstrong, F., Brandon, N., David, B., Barron, A.,
Durrant, J., et al. (2018). Options for producing low-carbon
hydrogen at scale. London: The Royal Society.
Toledo-Alarcón, J., Capson-Tojo, G., Marone, A., Paillet, F., Júnior, A.
D. N. F., & Chatellard, L. et al. (2018). Basics of bio-hydrogen
production by dark fermentation. In Q Liao, J. -S. Chang, C
Herrmann, A Xia (Eds.), Bioreactors for Microbial Biomass and
Energy Conversion (pp. 199–220). Singapore: Springer Singapore.
T-Raissi, A., Block, D. L. (2004). Hydrogen: Automotive fuel of the
future. IEEE Power and Energy Magazine 2(6), 40–5.
Upton, B. M., & Kasko, A. M. (2016). Strategies for the conversion of
lignin to high-value polymeric materials: Review and perspective.
Chemical Reviews, 116(4), 2275–2306.
Verhaart, M. R., Bielen, A. A., Oost, J. V. D., Stams, A. J., & Kengen,
S. W. (2010) Hydrogen production by hyperthermophilic and
extremely thermophilic bacteria and archaea: Mechanisms for
reductant disposal. Environmental Technology 31(8–9), 993–1003.
Wahid, R., Hjorth, M., Kristensen, S., & Møller, H. B. (2015).
Extrusion as pretreatment for boosting methane production: Effect
of screw configurations. Energy & Fuels, 29(7), 4030–4037.
Willquist, K., Pawar, S. S., & Van Niel, E. W. (2011). Reassessment of
hydrogen tolerance in Caldicellulosiruptor saccharolyticus. Microbial Cell Factories, 10(1), 111.
Worden, J. R., Bloom, A. A., Pandey, S., Jiang, Z., Worden, H. M.,
Walker, T. W., et al. (2017). Reduced biomass burning emissions
reconcile conflicting estimates of the post-2006 atmospheric
methane budget. Nature Communications, 8(1), 2227.
Xu, Z. (2007). Chapter 21-Biological Production of Hydrogen from
Renewable Resources. In S.-T. Yang (Ed.), Bioprocessing for
value-added products from renewable resources (pp. 527–557).
Amsterdam: Elsevier.
Xu, N., Liu, S., Xin, F., Zhou, J., Jia, H., Xu, J., et al. (2019).
Biomethane production from lignocellulose: Biomass recalcitrance
and its impacts on anaerobic digestion. Frontiers in Bioengineering
and Biotechnology, 7(191), 1–12. https://doi.org/10.3389/fbioe.
2019.00191.
Yu, J., & Takahashi, P. (2007) Biophotolysis-based hydrogen production by cyanobacteria and green microalgae. In A. M. Vilas (Ed.),
Communicating current research and educational topics and trends
in applied microbiology. Formatex (pp. 79–89).
Yu, H.-T., Chen, B.-Y., Li, B.-Y., Tseng, M.-C., Han, C.-C., & Shyu,
S.-G. (2018). Efficient pretreatment of lignocellulosic biomass with
high recovery of solid lignin and fermentable sugars using Fenton
reaction in a mixed solvent. Biotechnology for Biofuels, 11(1), 287.
Zagrodnik, R., & Laniecki, M. (2015). The role of pH control on
biohydrogen production by single stage hybrid dark-and
photo-fermentation. Bioresource Technology, 194, 187–195.
https://doi.org/10.1016/j.biortech.2015.07.028.
Zámocký, M., Gasselhuber, B., Furtmüller, P. G., & Obinger, C.
(2014). Turning points in the evolution of peroxidase–catalase
superfamily: molecular phylogeny of hybrid heme peroxidases.
Cellular and Molecular Life Sciences, 71(23), 4681–4696. https://
doi.org/10.1007/s00018-014-1643-y.
Zdanowicz, M., Wilpiszewska, K., & Spychaj, T. (2018). Deep eutectic
solvents for polysaccharides processing. A review. Carbohydrate
Polymers, 200, 361–380. https://doi.org/10.1016/j.carbpol.2018.07.
078.
Zhang, F., Ge, Z., Grimaud, J., Hurst, J., & He, Z. (2013). Long-term
performance of liter-scale microbial fuel cells treating primary
effluent installed in a municipal wastewater treatment facility.
Environmental Science & Technology, 47(9), 4941–4948.
Zheng, Y., Zhao, J., Xu, F., & Li, Y. (2014). Pretreatment of
lignocellulosic biomass for enhanced biogas production. Progress
in Energy and Combustion Science, 2014(42), 35–53. https://doi.
org/10.1016/j.pecs.2014.01.001.
Zhuang, X., Wang, W., Yu, Q., Qi, W., Wang, Q., Tan, X., et al.
(2016). Liquid hot water pretreatment of lignocellulosic biomass for
bioethanol production accompanying with high valuable products.
Bioresource Technology, 199, 68–75.
280
J. R. Khatiwada et al.
