272
88. Zakzeski J, Weckhuysen BM (2011) Lignin solubilization and aqueous phase reforming for
the production of aromatic chemicals and hydrogen. ChemSusChem 4:369–378. https://doi.
org/10.1002/cssc.201000299
89. Ahmad E, Pant KK (2018) Lignin conversion: A key to the concept of lignocellulosic
biomass-based integrated biorefinery. Elsevier B.V., Amsterdam. https://doi.org/10.1016/
B978-0-444-63992-9.00014-8
90. Zhang J, Teo J, Chen X, Asakura H, Tanaka T, Teramura K et al (2014) A series of NiM (M =
Ru, Rh, and Pd) bimetallic catalysts for effective lignin hydrogenolysis in water. ACS Catal
4:1574–1583. https://doi.org/10.1021/cs401199f
91. Ajaikumar S, Ahlkvist J, Larsson W, Shchukarev A, Leino AR, Kordas K et al (2011) Oxidation
of α-pinene over gold containing bimetallic nanoparticles supported on reducible TiO2 by
deposition-precipitation method. Appl Catal A Gen 392:11–18. https://doi.org/10.1016/j.
apcata.2010.10.015
92. Shabaker JW, Huber GW, Dumesic JA (2004) Aqueous-phase reforming of oxygenated
hydrocarbons over Sn-modified Ni catalysts. J Catal 222:180–191. https://doi.org/10.1016/j.
jcat.2003.10.022
93. Feng J, Zhang Y, Xiong W, Ding H, He B (2016) Hydrogenolysis of glycerol to 1,2-propanediol
and ethylene glycol over ru-co/zro2 catalysts. Catalysts 6:1–13. https://doi.org/10.3390/
catal6040051
94. Zhou J, Guo L, Guo X, Mao J, Zhang S (2010) Selective hydrogenolysis of glycerol to propanediols on supported Cu-containing bimetallic catalysts. Green Chem 12:1835–1843.
https://doi.org/10.1039/c0gc00058b
95. González-Borja MÁ, Resasco DE (2011) Anisole and guaiacol hydrodeoxygenation over
monolithic Pt-Sn catalysts. Energy Fuel 25:4155–4162. https://doi.org/10.1021/ef200728r
96. Jongerius AL, Jastrzebski R, Bruijnincx PCA, Weckhuysen BM (2012) CoMo sulfidecatalyzed hydrodeoxygenation of lignin model compounds: an extended reaction network
for the conversion of monomeric and dimeric substrates. J Catal 285:315–323. https://doi.
org/10.1016/j.jcat.2011.10.006
97. Ooi YS, Zakaria R, Mohamed AR, Bhatia S (2004) Catalytic cracking of used palm oil and
palm oil fatty acids mixture for the production of liquid fuel: kinetic modeling. Energy Fuel
18:1555–1561. https://doi.org/10.1021/ef049948v
98. Charusiri W, Yongchareon W, Vitidsant T (2006) Conversion of used vegetable oils to liquid
fuels and chemicals over HZSM-5, sulfated zirconia and hybrid catalysts. Korean J Chem Eng
23:349–355. https://doi.org/10.1007/BF02706733
R. Bhoi et al.
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