Nakajima K, Baba Y, Noma R, Kitano M, Kondo JN, Hayashi S, Hara M (2011) Nb 2 O 5 Á nH 2 O as a
heterogeneous catalyst with water-tolerant Lewis acid sites. J Am Chem Soc 133
(12):4224–4227
Nikolay V, Almudena M, Gilberto M, Antonia G, Vanessa M, Maria V (2013) Solubilization of
animal bone char by a filamentous fungus employed in solid state fermentation. Ecol Eng
58:165–169
Ogasawara Y, Itagaki S, Yamaguchi K, Mizuno N (2011) Saccharification of natural lignocellulose
biomass and polysaccharides by highly negatively charged heteropolyacids in concentrated
aqueous solution. ChemSusChem 4(4):519–525
Palkovits R, Tajvidi K, Procelewska J, Rinaldi R, Ruppert A (2010) Hydrogenolysis of cellulose
combining mineral acids and hydrogenation catalysts. Green Chem 12(6):972–978
Parker HJ, Chuck CJ, Woodman T, Jones MD (2016) Degradation of β-O-4 model lignin species by
vanadium Schiff-base catalysts: influence of catalyst structure and reaction conditions on
activity and selectivity. Catal Today 269:40–47. https://doi.org/10.1016/j.cattod.2015.08.045
Paul S, Dutta A (2018) Challenges and opportunities of lignocellulosic biomass for anaerobic
digestion. Resour Conserv Recycl 130:164–174
Prado R, Brandt A, Erdocia X, Hallet J, Welton T, Labidi J (2016) Lignin oxidation and
depolymerisation in ionic liquids. Green Chem 18(3):834–841. https://doi.org/10.1039/
C5GC01950H
Qi X, Watanabe M, Aida TM, Smith RL Jr (2008) Catalytical conversion of fructose and glucose
into 5-hydroxymethylfurfural in hot compressed water by microwave heating. Catal Commun 9
(13):2244–2249
Rafi MM, Hanumanthu MG, Rizwana S, Venkateswarlu K, Rao DM (2012) Effect of different
physico-chemical parameters on fermentative production of itaconic acid by Ustilago maydis. J
Microbiol Biotech Res 2(5):794–800
Rangabhashiyam S, Balasubramanian P (2019) The potential of lignocellulosic biomass precursors
for biochar production: performance, mechanism and wastewater application—a review. Ind
Crop Prod 128:405–423
Regmi YN, Mann JK, McBride JR, Tao J, Barnes CE, Labbé N, Chmely SC (2018) Catalytic
transfer hydrogenolysis of organosolv lignin using B-containing FeNi alloyed catalysts. Catal
Today 302:190–195. https://doi.org/10.1016/j.cattod.2017.05.051
Renders T, Schutyser W, Van den Bosch S, Koelewijn SF, Vangeel T, Courtin CM, Sels BF (2016)
Influence of acidic (H3PO4) and alkaline (NaOH) additives on the catalytic reductive fractionation of lignocellulose. ACS Catal 6(3):2055–2066. https://doi.org/10.1021/acscatal.5b02906
Rentizelas AA, Tolis AJ, Tatsiopoulos IP (2009) Logistics issues of biomass: the storage problem
and the multi biomass supply chain. Renew Sust Energ Rev 13:887–894
Ribeiro LS, Órfão JJ, Pereira MFR (2015) Enhanced direct production of sorbitol by cellulose ballmilling. Green Chem 17(5):2973–2980
Ribeiro LS, Delgado JJ, Órfão JJ, Pereira MFR (2017) Carbon supported Ru-Ni bimetallic catalysts
for the enhanced one-pot conversion of cellulose to sorbitol. Appl Catal B Environ 217:265–274
Román-Leshkov Y, Chheda JN, Dumesic JA (2006) Phase modifiers promote efficient production
of hydroxymethylfurfural from fructose. Science 312(5782):1933–1937
Ruiz PE, Leiva K, Garcia R, Reyes P, Fierro JLG, Escalona N (2010) Relevance of sulfiding
pretreatment on the performance of Re/ZrO 2 and Re/ZrO 2 -sulfated catalysts for the
hydrodeoxygenation of guayacol. Appl Catal A Gen 384(1-2):78–83. https://doi.org/10.1016/
j.apcata.2010.06.009
Sadhukhan J, Martinez-Hernandez E, Amezcua-Allieri MA, Aburto J (2019) Economic and
environmental impact evaluation of various biomass feedstock for bioethanol production and
correlations to lignocellulosic composition. Bioresour Technol Rep 7:100230
Saha B (2003) Hemicellulose bioconversion. J Ind Microbiol Biotechnol 30:279–291
Sahu R, Dhepe PL (2012) A one-pot method for the selective conversion of hemicellulose from
crop waste into C5 sugars and furfural by using solid acid catalysts. ChemSusChem 5
(4):751–761
6 Sustainable Biorefinery Technologies for Agro-Residues: Challenges and. . .
127
Précédent

- 138/347

Suivant