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Pretreatment of agroindustry waste by ozonolysis for synthesis of biorefinery products 335
Shi, Y., Huang, C., Rocha, K.C., El-Din, M.G., Liu, Y., 2015a. Treatment of oil sands
process-affected water using moving bed biofilm reactors: with and without ozone pre-
treatment. Bioresour. Technol. 192, 219 227.
Shi, F., Xiang, H., Li, Y., 2015b. Combined pretreatment using ozonolysis and ball milling
to improve enzymatic saccharification of corn straw. Bioresour. Technol. 179,
444 451.
Sindhu, R., Binod, P., Mathew, A.K., Abraham, A., Gnansounou, E., Ummalyma, S.B., et al.,
2017. Development of a novel ultrasound-assisted alkali pretreatment strategy for the
production of bioethanol and xylanases from chili post harvest residue. Bioresour.
Technol. 242, 146 151.
Song, D., An, S., Lu, B., Guo, Y., Leng, J., 2015. Arylsulfonic acid functionalized hollow
mesoporous carbon spheres for efficient conversion of levulinic acid or furfuryl alcohol
to ethyl levulinate. Appl. Catal., B: Environ. 179, 445 457.
Souza-Corrˆ ea, J.A., Ridenti, M.A., Oliveira, C., Arau ´jo, S.R., Amorim, J., 2013.
Decomposition of lignin from sugar cane bagasse during ozonation process monitored
by optical and mass spectrometries. J. Phys. Chem. B 117 (11), 3110 3119.
Souza-Corrˆ ea, J.A., Oliveira, C., Nascimento, V.M., Wolf, L.D., Go ´mez, E.O., Rocha, G.J.
M., et al., 2014. Atmospheric pressure plasma pretreatment of sugarcane bagasse: the
influence of biomass particle size in the ozonation process. Appl. Biochem. Biotechnol.
172 (3), 1663 1672.
Tasaso, P., 2015. Optimization of reaction conditions for synthesis of carboxymethyl cellu-
lose from oil palm fronds. Int. J. Chem. Eng. Appl. 6 (2), 101 104.
Tijsen, C.J., Kolk, H.J., Stamhuis, E.J., Beenackers, A.A.C.M., 2001. An experimental study
on the carboxymethylation of granular potato starch in non-aqueous media. Carbohydr.
Polym. 45 (3), 219 226.
Tiong, Y.W., Yap, C.L., Gan, S., Yap, W.S.P., 2017. One-pot conversion of oil palm empty
fruit bunch and mesocarp fiber biomass to levulinic acid and upgrading to ethyl levuli-
nate via indium trichloride-ionic liquids. J. Cleaner Prod. 168, 1251 1261.
Tiong, Y.W., Yap, C.L., Gan, S., Yap, W.S.P., 2018. Conversion of biomass and its deriva-
tives to levulinic acid and levulinate esters via ionic liquids. Ind. Eng. Chem. Res. 57
(14), 4749 4766.
Tiong, Y.W., Yap, C.L., Gan, S., Yap, W.S.P., 2019. Optimisation studies on the conversion
of oil palm biomass to levulinic acid and ethyl levulinate via indium trichloride-ionic
liquids: a response surface methodology approach. Ind. Crops Prod. 128, 221 234.
Travaini, R., Otero, M.D.M., Coca, M., Da-Silva, R., Bolado, S., 2013. Sugarcane bagasse
ozonolysis pretreatment: effect on enzymatic digestibility and inhibitory compound for-
mation. Bioresour. Technol. 133, 332 339.
Travaini, R., Barrado, E., Bolado, S., 2015. Sugarcane bagasse ozonolysis pretreatment
hydrolysates fermentation by brewer’s yeast Saccharomyces cerevisiae. J. Biotechnol.
208, S118.
Travaini, R., Barrado, E., Bolado-Rodrı ´guez, S., 2016a. Effect of ozonolysis pretreatment
parameters on the sugar release, ozone consumption and ethanol production from sugar-
cane bagasse. Bioresour. Technol. 214, 150 158.
Travaini, R., Barrado, E., Bolado-Rodrı ´guez, S., 2016b. Effect of ozonolysis parameters on
the inhibitory compound generation and on the production of ethanol by Pichia stipitis
and acetone-butanol-ethanol by Clostridium from ozonated and water washed sugarcane
bagasse. Bioresour. Technol. 218, 850 858.