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71. Zhang Z, Song J, Han B (2017) Catalytic transformation of lignocellulose into chemicals
and fuel products in ionic liquids. Chem Rev 117:6834–6880. https://doi.org/10.1021/acs.
chemrev.6b00457
72. Skoda-Földes R (2014) The use of supported acidic ionic liquids in organic synthesis.
Molecules 19:8840–8884. https://doi.org/10.3390/molecules19078840
73. Xu H, Zhao H, Song H, Miao Z, Yang J, Zhao J et al (2015) Functionalized ionic liquids
supported on silica as mild and effective heterogeneous catalysts for dehydration of biomass to furan derivatives. J Mol Catal A Chem 410:235–241. https://doi.org/10.1016/j.
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org/10.1016/j.catcom.2016.05.002
75. Cao Y, Zhou H, Li J (2016) Preparation of a supported acidic ionic liquid on silica-gel and its
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76. Eftekhari A, Saito T (2017) Synthesis and properties of polymerized ionic liquids. Eur Polym
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77. Li H, Zhang Q, Liu X, Chang F, Zhang Y, Xue W et al (2013) Immobilizing Cr3+ with SO3Hfunctionalized solid polymeric ionic liquids as efficient and reusable catalysts for selective
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78. Liu DDJ, Chen EYX (2013) Polymeric ionic liquid (PIL)-supported recyclable catalysts for
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79. Wu Z, Chen C, Guo Q, Li B, Que Y, Wang L et al (2016) Novel approach for preparation
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80. Liu B, Zhang Z (2016) Catalytic conversion of biomass into chemicals and fuels over magnetic
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81. Chiang YD, Dutta S, Chen CT, Huang YT, Lin KS, Wu JCS et al (2015) Functionalized
Fe3O4@Silica Core-Shell Nanoparticles as Microalgae Harvester and Catalyst for Biodiesel
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82. Jin X, Dang L, Lohrman J, Subramaniam B, Ren S, Chaudhari RV (2013) Lattice-matched
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83. Huang S, Yang KL, Liu XF, Pan H, Zhang H, Yang S (2017) MIL-100(Fe)-catalyzed efficient conversion of hexoses to lactic acid. RSC Adv 7:5621–5627. https://doi.org/10.1039/
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84. Degirmenci V, Pidko EA, Magusin PCMM, Hensen EJM (2011) Towards a selective heterogeneous catalyst for glucose dehydration to 5-Hydroxymethylfurfural in water: CrCl2 catalysis
in a thin immobilized ionic liquid layer. ChemCatChem 3:969–972. https://doi.org/10.1002/
cctc.201000426
85. Karski S, Paryjczak T, Witoñska I (2003) Selective oxidation of glucose to gluconic acid over
bimetallic Pd-Me catalysts (Me = Bi, Tl, Sn, Co). Kinet Catal 44:618–622. https://doi.org/1
0.1023/A:1026133820538
86. Hoffer BW, Crezee E, Mooijman PRM, Van Langeveld AD, Kapteijn F, Moulijn JA (2003)
Carbon supported Ru catalysts as promising alternative for Raney-type Ni in the selective hydrogenation of D-glucose. Catal Today 79–80:35–41. https://doi.org/10.1016/
S0920- 5861(03)00040- 3
87. Rao R, Dandekar A, Baker RTK, Vannice MA (1997) Properties of copper chromite catalysts
in hydrogenation reactions. J Catal 171:406–419. https://doi.org/10.1006/jcat.1997.1832
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70. Zhang Q, Zhang S, Deng Y (2011) Recent advances in ionic liquid catalysis. Green Chem
13:2619–2637. https://doi.org/10.1039/c1gc15334j
71. Zhang Z, Song J, Han B (2017) Catalytic transformation of lignocellulose into chemicals
and fuel products in ionic liquids. Chem Rev 117:6834–6880. https://doi.org/10.1021/acs.
chemrev.6b00457
72. Skoda-Földes R (2014) The use of supported acidic ionic liquids in organic synthesis.
Molecules 19:8840–8884. https://doi.org/10.3390/molecules19078840
73. Xu H, Zhao H, Song H, Miao Z, Yang J, Zhao J et al (2015) Functionalized ionic liquids
supported on silica as mild and effective heterogeneous catalysts for dehydration of biomass to furan derivatives. J Mol Catal A Chem 410:235–241. https://doi.org/10.1016/j.
molcata.2015.09.020
74. Sun J, Yang J, Li S, Xu X (2016) Basic ionic liquid immobilized oxides as heterogeneous
catalyst for biodiesel synthesis from waste cooking oil. Cat Com 83:35–38. https://doi.
org/10.1016/j.catcom.2016.05.002
75. Cao Y, Zhou H, Li J (2016) Preparation of a supported acidic ionic liquid on silica-gel and its
application to the synthesis of biodiesel from waste cooking oil. Renew Sustain Energy Rev
58:871–875. https://doi.org/10.1016/j.rser.2015.12.237
76. Eftekhari A, Saito T (2017) Synthesis and properties of polymerized ionic liquids. Eur Polym
J 90:245–272. https://doi.org/10.1016/j.eurpolymj.2017.03.033
77. Li H, Zhang Q, Liu X, Chang F, Zhang Y, Xue W et al (2013) Immobilizing Cr3+ with SO3Hfunctionalized solid polymeric ionic liquids as efficient and reusable catalysts for selective
transformation of carbohydrates into 5-hydroxymethylfurfural. Bioresour Technol 144:21–27.
https://doi.org/10.1016/j.biortech.2013.06.063
78. Liu DDJ, Chen EYX (2013) Polymeric ionic liquid (PIL)-supported recyclable catalysts for
biomass conversion into HMF. Biomass Bioenergy 48:181–190. https://doi.org/10.1016/j.
biombioe.2012.11.020
79. Wu Z, Chen C, Guo Q, Li B, Que Y, Wang L et al (2016) Novel approach for preparation
of poly (ionic liquid) catalyst with macroporous structure for biodiesel production. Fuel
184:128–135. https://doi.org/10.1016/j.fuel.2016.07.004
80. Liu B, Zhang Z (2016) Catalytic conversion of biomass into chemicals and fuels over magnetic
catalysts. ACS Catal 6:326–338. https://doi.org/10.1021/acscatal.5b02094
81. Chiang YD, Dutta S, Chen CT, Huang YT, Lin KS, Wu JCS et al (2015) Functionalized
Fe3O4@Silica Core-Shell Nanoparticles as Microalgae Harvester and Catalyst for Biodiesel
Production. ChemSusChem 8:789–794. https://doi.org/10.1002/cssc.201402996
82. Jin X, Dang L, Lohrman J, Subramaniam B, Ren S, Chaudhari RV (2013) Lattice-matched
bimetallic CuPd-graphene nanocatalysts for facile conversion of biomass-derived polyols to
chemicals. ACS Nano 7:1309–1316. https://doi.org/10.1021/nn304820v
83. Huang S, Yang KL, Liu XF, Pan H, Zhang H, Yang S (2017) MIL-100(Fe)-catalyzed efficient conversion of hexoses to lactic acid. RSC Adv 7:5621–5627. https://doi.org/10.1039/
c6ra26469g
84. Degirmenci V, Pidko EA, Magusin PCMM, Hensen EJM (2011) Towards a selective heterogeneous catalyst for glucose dehydration to 5-Hydroxymethylfurfural in water: CrCl2 catalysis
in a thin immobilized ionic liquid layer. ChemCatChem 3:969–972. https://doi.org/10.1002/
cctc.201000426
85. Karski S, Paryjczak T, Witoñska I (2003) Selective oxidation of glucose to gluconic acid over
bimetallic Pd-Me catalysts (Me = Bi, Tl, Sn, Co). Kinet Catal 44:618–622. https://doi.org/1
0.1023/A:1026133820538
86. Hoffer BW, Crezee E, Mooijman PRM, Van Langeveld AD, Kapteijn F, Moulijn JA (2003)
Carbon supported Ru catalysts as promising alternative for Raney-type Ni in the selective hydrogenation of D-glucose. Catal Today 79–80:35–41. https://doi.org/10.1016/
S0920- 5861(03)00040- 3
87. Rao R, Dandekar A, Baker RTK, Vannice MA (1997) Properties of copper chromite catalysts
in hydrogenation reactions. J Catal 171:406–419. https://doi.org/10.1006/jcat.1997.1832
Sustainability of the Catalytic Process for Biomass Conversion: Recent Trends and…
