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238                     Refining Biomass Residues for Sustainable Energy and Bioproducts


         Damay, J., Boboescu, I.-Z., Duret, X., Lalonde, O., Lavoie, J.-M., 2018a. A novel hybrid first
             and second generation hemicellulosic bioethanol production process through steam treat-
             ment of dried sorghum biomass. Bioresour. Technol. 263, 103 111.
         Damay, J., Duret, X., Ghislain, T., Lalonde, O., Lavoie, J.-M., 2018b. Steam explosion of
             sweet sorghum stems: optimisation of the production of sugars by response surface
             methodology combined with the severity factor. Ind. Crops Prod. 111, 482 493.
         Dar, R.A., Dar, E.A., Kaur, A., Phutela, U.G., 2018. Sweet sorghum-a promising alternative
             feedstock for biofuel production. Renewable Sustainable Energy Rev. 82, 4070 4090.
         Dayakar Rao, B., Ratnavathi, C., Karthikeyan, K., Biswas, P., Rao, S., Vijay Kumar, B.,
             et al., 2004. Sweet sorghum cane for bio-fuel production: a SWOT analysis in Indian
             context. Nat. Res. Cent. Sorghum, Rajendranagar, Hyderabad, AP 500, 030.
         Demirbas, A., 2008. Biofuels sources, biofuel policy, biofuel economy and global biofuel
             projections. Energy Convers. Manage. 49 (8), 2106 2116.
         de Resende, A.S., Xavier, R.P., de Oliveira, O.C., Urquiaga, S., Alves, B.J., Boddey, R.M.,
             2006. Long-term effects of pre-harvest burning and nitrogen and vinasse applications on
             yield of sugar cane and soil carbon and nitrogen stocks on a plantation in Pernambuco,
             NE Brazil. Plant Soil 281 (1 2), 339 351.
         Deshavath, N.N., Dasu, V.V., Goud, V., Rao, P.S., 2017. Development of dilute sulfuric acid
             pretreatment method for the enhancement of xylose fermentability. Biocatal. Agric.
             Biotechnol. 11, 224 230.
         Devarajan, Y., Kumar Jayabal, R., Ragupathy, D., Venu, H., 2017. Emissions analysis on
             second generation biodiesel. Front. Environ. Sci. Eng. 11 (1), 3.
         Doggett, H., 1970. Sorghum. Longmans, Green and Co., Ltd, London.
         Doggett, H., 1988. Sorghum. Longman Scientific & Technical, Harlow, UK.
         Gahlout, M., Rudakiya, D.M., Gupte, S., Gupte, A., 2017. Laccase-conjugated amino-func-
             tionalized nanosilica for efficient degradation of Reactive Violet 1 dye. Int. Nano Lett.
             7(3),195 208.
         Godlewska, P., Schmidt, H.P., Ok, Y.S., Oleszczuk, P., 2017. Biochar for composting
             improvement and contaminants reduction. A review. Bioresour. Technol. 246, 193 202.
         Gollakota, A., Kishore, N., Gu, S., 2018. A review on hydrothermal liquefaction of biomass.
             Renewable Sustainable Energy Rev. 81, 1378 1392.
         Guiying, L., Weibin, G., Hicks, A., Chapman, K.R., 2000. Training manual for sweet
             sorghum.
         Harlan, J., De Wet, J., 1972. A simplified classification of cultivated sorghum 1. Crop Sci.
             12 (2), 172 176.
         Hassan, S.S., Williams, G.A., Jaiswal, A.K., 2018. Emerging technologies for the pretreat-
             ment of lignocellulosic biomass. Bioresour. Technol. 262, 310 318.
         Hattori, T., Inanaga, S., Araki, H., An, P., Morita, S., Luxova ´, M., et al., 2005. Application of
             silicon enhanced drought tolerance in Sorghum bicolor. Physiol. Plant. 123 (4), 459 466.
         Heredia-Olea, E., Pe ´rez-Carrillo, E., Serna-Saldı ´var, S.O., 2012. Effects of different acid
             hydrolyses on the conversion of sweet sorghum bagasse into C5 and C6 sugars and yeast
             inhibitors using response surface methodology. Bioresour. Technol. 119, 216 223.
         Hombach, L.E., Cambero, C., Sowlati, T., Walther, G., 2016. Optimal design of supply
             chains for second generation biofuels incorporating European biofuel regulations. J.
             Clean. Prod. 133, 565 575.
         Huang, Y.-F., Chiueh, P.-T., Shih, C.-H., Lo, S.-L., Sun, L., Zhong, Y., et al., 2015.
             Microwave pyrolysis of rice straw to produce biochar as an adsorbent for CO 2 capture.
             Energy 84, 75 82.
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