Katahira R, Mittal A, McKinney K, Chen X, Tucker MP, Johnson DK, Beckham GT (2016) Basecatalyzed depolymerization of biorefinery lignins. ACS Sustain Chem Eng 4(3):1474–1486.
https://doi.org/10.1021/acssuschemeng.5b01451
Kervinen K, Korpi H, Gerbrand Mesu J, Soulimani F, Repo T, Rieger B et al (2005) Mechanistic
insights into the oxidation of veratryl alcohol with Co (salen) and oxygen in aqueous media: an
in-situ spectroscopic study. Eur J Inorg Chem 2005(13):2591–2599. https://doi.org/10.1002/
ejic.200500042
Khan AS, Man Z, Bustam MA, Kait CF, Nasrullah A, Ullah Z, Sarwono A, Ahamd P, Muhammad
N (2018) Dicationic ionic liquids as sustainable approach for direct conversion of cellulose to
levulinic acid. J Clean Prod 170:591–600
Kirk-Othmer (2001) Encyclopaedia of chemical technology, concise, 4th edn. Wiley-Interscience,
New York
Kirtay E (2011) Recent advances in production of hydrogen from biomass. Energy Convers Manag
52(4):1778–1789
Kitano M, Nakajima K, Kondo JN, Hayashi S, Hara M (2010) Protonated titanate nanotubes as
solid acid catalyst. J Am Chem Soc 132(19):6622–6623
Klein I, Marcum C, Kenttämaa H, Abu-Omar MM (2016) Mechanistic investigation of the Zn/Pd/C
catalyzed cleavage and hydrodeoxygenation of lignin. Green Chem 18(8):2399–2405. https://
doi.org/10.1039/C5GC01325A
Kobayashi H, Ito Y, Komanoya T, Hosaka Y, Dhepe PL, Kasai K, Hara K, Fukuoka A (2011a)
Synthesis of sugar alcohols by hydrolytic hydrogenation of cellulose over supported metal
catalysts. Green Chem 13(2):326–333
Kobayashi H, Matsuhashi H, Komanoya T, Hara K, Fukuoka A (2011b) Transfer hydrogenation of
cellulose to sugar alcohols over supported ruthenium catalysts. Chem Commun 47
(8):2366–2368
Kuenz A, Gallenmüller Y, Willke T, Vorlop KD (2012) Microbial production of itaconic acid:
developing a stable platform for high product concentrations. Appl Microbiol Biotechnol 96
(5):1209–1216
Kumar A, Jain N, Chauhan SMS (2007) Biomimetic oxidation of veratryl alcohol with H2O2
catalyzed by iron (III) porphyrins and horseradish peroxidase in ionic liquid. Synlett 2007
(3):0411–0414. https://doi.org/10.1055/s-2007-967951
Kumar V, Binod P, Sindhu R, Gnansounou E, Ahluwalia V (2018) Bioconversion of pentose sugars
to value added chemicals and fuels: recent trends, challenges and possibilities. Bioresour
Technol 269:443
Kumar B, Bhardwaj N, Agrawal K, Chaturvedi V, Verma P (2020) Current perspective on
pretreatment technologies using lignocellulosic biomass: an emerging biorefinery concept.
Fuel Process Technol 199:106244
Lan W, Amiri MT, Hunston CM, Luterbacher JS (2018) Protection group effects during α, γ-diol
lignin stabilization promote high-selectivity monomer production. Angew Chem 130
(5):1370–1374. https://doi.org/10.1002/ange.201710838
Laopaiboon P, Thani A, Leelavatcharamas V, Laopaiboon L (2010) Acid hydrolysis of sugarcane
bagasse for lactic acid production. Bioresour Technol 101(3):1036–1043
Li Q, Siles JA, Thompson IP (2010a) Succinic acid production from orange peel and wheat straw by
batch fermentations of Fibrobacter succinogenes S85. Appl Microbiol Biotechnol 88
(3):671–678
Li Q, Yang M, Wang D, Li W, Wu Y, Zhang Y, Xing J, Su Z (2010b) Efficient conversion of crop
stalk wastes into succinic acid production by Actinobacillus succinogenes. Bioresour Technol
101(9):3292–3294
Li J, Zheng XY, Fang XJ, Liu SW, Chen KQ, Jiang M, Wei P, Ouyang PK (2011) A complete
industrial system for economical succinic acid production by Actinobacillus succinogenes.
Bioresour Technol 102(10):6147–6152
6 Sustainable Biorefinery Technologies for Agro-Residues: Challenges and. . .
125
Précédent

- 136/347

Suivant