Page 273 - Refining Biomass Residues for Sustainable Energy and Bioproducts
P. 273
Sweet sorghum: a potential resource for bioenergy production 241
Rodionova, M.V., Poudyal, R.S., Tiwari, I., Voloshin, R.A., Zharmukhamedov, S.K., Nam,
H.G., et al., 2017. Biofuel production: challenges and opportunities. Int. J. Hydrogen
Energy 42 (12), 8450 8461.
Rohowsky, B., H¨ aßler, T., Gladis, A., Remmele, E., Schieder, D., Faulstich, M., 2013.
Feasibility of simultaneous saccharification and juice co-fermentation on hydrothermal
pretreated sweet sorghum bagasse for ethanol production. Appl. Energy 102, 211 219.
Rooney, W.L., 2014. Sorghum. In: Cellulosic Energy Cropping Systems, D. L. Karlen (Ed.).
Available from: https://doi:10.1002/9781118676332.ch7
Rudakiya, D.M., Gupte, A., 2017. Degradation of hardwoods by treatment of white rot fungi
and its pyrolysis kinetics studies. Int. Biodeterior. Biodegrad. 120, 21 35.
Rudakiya, D.M., Gupte, A., 2019. Assessment of white rot fungus mediated hardwood degrada-
tion by FTIR spectroscopy and multivariate analysis. J. Microbiol. Methods 157, 123 130.
Rudakiya, D.M., Iyer, V., Shah, D., Gupte, A., Nath, K., 2018. Biosorption potential of
Phanerochaete chrysosporium for arsenic, cadmium, and chromium removal from aque-
ous solutions. Global Challenges 2 (12), 1800064.
Sambusiti, C., Ficara, E., Malpei, F., Steyer, J., Carre `re, H., 2013. Effect of sodium hydrox-
ide pretreatment on physical, chemical characteristics and methane production of five
varieties of sorghum. Energy 55, 449 456.
Sen, S., Patil, S., Argyropoulos, D.S., 2015. Thermal properties of lignin in copolymers,
blends, and composites: a review. Green Chem. 17 (11), 4862 4887.
Shen, F., Saddler, J.N., Liu, R., Lin, L., Deng, S., Zhang, Y., et al., 2011. Evaluation of steam
pretreatment on sweet sorghum bagasse for enzymatic hydrolysis and bioethanol produc-
tion. Carbohydr. Polym. 86 (4), 1542 1548.
Shirkavand, E., Baroutian, S., Gapes, D.J., Young, B.R., 2016. Combination of fungal and
physicochemical processes for lignocellulosic biomass pretreatment a review.
Renewable Sustainable Energy Rev. 54, 217 234.
Sigua, G.C., Stone, K.C., Hunt, P.G., Cantrell, K.B., Novak, J.M., 2015. Increasing biomass
of winter wheat using sorghum biochars. Agron. Sustainable Dev. 35 (2), 739 748.
Sipos, B., Re ´czey, J., Somorai, Z., Ka ´da ´r, Z., Dienes, D., Re ´czey, K., 2009. Sweet sorghum
as feedstock for ethanol production: enzymatic hydrolysis of steam-pretreated bagasse.
Appl. Biochem. Biotechnol. 153 (1-3), 151 162.
Smith, C.W., Frederiksen, R.A., 2000. Sorghum: Origin, History, Technology, and
Production. John Wiley & Sons.
ˇ
Soudek, P., Valseca, I.R., Petrova ´, S., Song, J., Vanˇ ek, T., 2017. Characteristics of different
types of biochar and effects on the toxicity of heavy metals to germinating sorghum
seeds. J. Geochem. Explor. 182, 157 165.
Srinivasa Rao, P., Reddy, B.V., Ravinder Reddy, C., Blummel, M., Ashok Kumar, A., Rao, P.P.,
et al., 2012. Utilizing co-products of the sweet sorghum-based biofuel industry as livestock
feed in decentralized systems. Biofuel Co-products as Livestock Feed: Opportunities and
Challenges. Food and Agriculture Organization of the United Nations, Rome, pp. 229 242.
Staggenborg, S., 2016. Forage and renewable sorghum end uses. In: Ciampitti, I., Prasad, V.
(Eds.), Sorghum: State of the Art and Future Perspectives, Agron. Monogr, 58. ASA
and CSSA, Madison, WI.
Stahlman, P., Wicks, G., Smith, C., Frederiksen, R., 2000. Weeds and their control in grain
sorghum. Sorghum: Origin, History, Technology, and Production. Wiley, New York,
pp. 535 582.
Sukumaran, R.K., Surender, V.J., Sindhu, R., Binod, P., Janu, K.U., Sajna, K.V., et al., 2010.
Lignocellulosic ethanol in India: prospects, challenges and feedstock availability.
Bioresour. Technol. 101 (13), 4826 4833.