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Articles

Bioconversion of cassava stem to ethanol: oxalic acid pretreatment and co-culture fermentation

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Pages 559-566 | Received 11 Sep 2017, Accepted 12 Jan 2018, Published online: 08 Feb 2018

References

  • Escobar JC, Lora SE, Venturin OJ, et al. Biofuels: environment, technology and food security. Renewable Sustainable Energy Rev. 2009;13:1275–1287.
  • Teymouri F, Laureano-Perez L, Alizadeh H, et al. Optimization of ammonia fiber explosion (AFEX) treatment parameters for enzymatic hydrolysis of corn stover. Bioresour Technol. 2005;96:2014–2018.
  • Alves AAC, Cassava botany and physiology. In: Hillocks RJ, Thresh JM, Bellotti AC, editors. Cassava: biology, production and utilization. United Kingdom: CAB International; 2002. p. 67–89.
  • Kotoka F, Tulashie SK, Setsoafia DD. Production of bioethanol from liquid waste from cassava dough during gari processing. Biofuels. 2017;8:1–9.
  • Schell DJ, Dowe N, Ibsen KN, et al. Contaminant occurrence, identification and control in a pilot-scale corn fiber to ethanol conversion process. Bioresour Technol. 2007;98:2942–2948.
  • Alvira P, Tomás-Pejó E, Ballesteros M, et al. Pretreatment technologies for an efficient bioethanol production process based on enzymatic hydrolysis: a review. Bioresour Technol. 2010;101:4851–4861.
  • Niphadkar S, Bagade P, Ahmed S. Bioethanol production: insight into past, present and future perspectives. Biofuels. 2017;8:1–10.
  • Kumar P, Barrett DM, Delwiche MJ, et al. Methods for pretreatment of lignocellulosic biomass for efficient hydrolysis and biofuel production. Ind Eng Chem Res. 2009;48:3713–3729.
  • Mosier N, Wyman CE, Dale BD, et al. Features of promising technologies for pretreatment of lignocellulosic biomass. Bioresour Technol. 2005;96:673–686.
  • Hendriks ATWM, Zeeman G. Pretreatments to enhance the digestibility of lignocellulosic biomass. Bioresour Technol. 2009;100:10–18.
  • Taherzadeh MJ, Karimi K. Pretreatment of lignocellulosic wastes to improve ethanol and biogas production: a review. Int J Mol Sci. 2008;9:1621–1651.
  • Yang B, Wyman CE. Pretreatment: the key to unlocking low-cost cellulosic ethanol. Biofuels Bioprod Bior. 2008;2:26–40.
  • Olguin-Maciel E, Larqué-Saavedra A, Pérez-Brito B, et al. Brosimum Alicastrum as a novel starch source for bioethanol production. Energies. 2017;10:1574.
  • Capecchi L, Nissen L, Modesto M, et al. Crop factors influencing ethanol production from sorghum juice and bagasse. Energies. 2017;10:940.
  • Limousy L, Jeguirim M, Labaki M. Energy applications of coffee processing by-products. In: Galanakis C, editor. Handbook of coffee processing by-products. New York: Academic Press Inc; 2017. p. 323–367.
  • Albarelli JQ, Onorati S, Caliandro P, et al. Multi-objective optimization of a sugarcane biorefinery for integrated ethanol and methanol production. Energy. 2017;138:1281–1290.
  • Zhao C, Zou Z, Li J, et al. A novel and efficient bioprocess from steam exploded corn stover to ethanol in the context of on-site cellulase production. Energy. 2017;123:499–510.
  • Box GEP, Behnken D. Some new three level designs for the study of quantitative factors. Technometrics. 1960;2:455–475.
  • Yu JL, Zhang X, Tan TW. Optimization of media conditions for the production of ethanol from sweet sorghum juice by immobilized Saccharomyces cerevisiae. Biomass Bioenerg. 2009;33:521–526.
  • Lee DH, Cho EY, hang-Joon Kim CJ, et al. Pretreatment of waste newspaper using ethylene glycol for bioethanol production. Biotechnol Bioprocess Eng. 2010;15:1094–1101.
  • Gao M, Xu F, Li S, et al. Effect of SC-CO2 pretreatment in increasing rice straw biomass conversion. BioSyst Eng. 2010;106:470–475.
  • Martin C, Alriksson B, Sjöde A, et al. Dilute sulfuric acid pretreatment of agricultural and agro-industrial residues for ethanol production. Appl Biochem Biotechnol. 2007;136–140:339–352.
  • Goering HK, Van soest PJ. Forage fiber analysis (Apparatus, Reagent, Procedures, and Some Applications). Agricultural Handbook No. 379. Washington: Agriculture Research Service-United States Department of Agriculture; 1970. p. 1–20.
  • Hodge JE, Hofreiter BT. Determination of reducing sugars and carbohydrates. In: Whistler RL, Wolfrom ML, Be-Miller JN, Shafizadeh F, editors. Methods in carbohydrate chemistry. New York: Academic Press Inc; 1962. p. 380–394.
  • Lowry OH, Rosebrough NJ, Farr AL, et al. Protein measurement with the Folin phenol reagent. J Biol Chem. 1951;193:265.
  • AOAC Official Method 925.09. Solids and moisture in flour. In: Official methods of analysis of AOAC international. 17th ed. Gaithersburg: AOAC International; 2005a.
  • AOAC Official Method 942.05. Ash of animal feed. In: Official methods of analysis of AOAC international. 17th ed. Gaithersburg: AOAC International; 2005b.
  • Dawson RMC, Elliott DC, Elliott WH, et al. Data for biochemical research. Oxford: Oxford Science Publications; 1986.
  • Miller GL. Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal Chem. 1959;31:426–428.
  • Nitsos C, Matsakas L, Triantafyllidis K, et al. Investigation of different pretreatment methods of Mediterranean-type ecosystem agricultural residues: characterisation of pretreatment products, high-solids enzymatic hydrolysis and bioethanol production. Biofuels. 2017;8:1–14.
  • Vanitha S, Bharathi SV, Sivamani S. Statistical modeling and optimization of bioethanol production from parthenium hysterophorus. bioremediation and sustainable technologies for cleaner environment. Switzerland: Springer International Publishing; 2017. p. 253–265.
  • Caputi AJ, Ueda M, Brown T. Spectrophotometric determination of ethanol in wine. Am J Enol Viticult. 1968;19:160–165.
  • Hii KL, Yeap SP, Mashitah MD. Utilization of palm pressed pericarp fiber: pretreatment, optimization and characterization. Environ Prog Sust Energ. 2014;33:238–249.
  • Phowchinda O, Delia-Dupuy ML, Strehaiano P. Alcoholic fermentation from sweet sorghum: some operating problems. Thailand: King Mongkut's Institute of Technology North Bangkok; 2009. UMR-CNRS 5503 ENSIGC-INP.
  • Zhu L, O'Dwyer JP, Chang VS, et al. Structural features affecting biomass enzymatic digestibility. Bioresour Technol. 2008;99:3817–3828.
  • Fu D, Mazza G, Tamaki Y. Lignin extraction from straw by ionic liquids and enzymatic hydrolysis of the cellulosic residues. J Agric Food Chem. 2010;58:2915–2922.
  • Sovorawet B, Kongkiattikajorn J. Bioproduction of Ethanol in SHF and SSF from Cassava stalks. KKU Res J. 2012;17:565–572.
  • Nanssou PAK, Nono YJ, Kapseu C. Pretreatment of cassava stems and peelings by thermohydrolysis to enhance hydrolysis yield of cellulose in bioethanol production process. Renew Energ. 2016;97:252–265.
  • Nguyen QA, Yang J, Bae HJ. Bioethanol production from individual and mixed agricultural biomass residues. Ind Crop Prod. 2017;95:718–725.
  • Ferro MD, Fernandes MC, Paulino AF, et al. Bioethanol production from steam explosion pretreated and alkali extracted Cistus ladanifer (rockrose). Biochem Eng J. 2015;104:98–105.

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