1 3
Topics in Current Chemistry (2019) 377:1
49. Guidi S, Calmanti R, Noè M, Perosa A, Selva M (2016) Thermal (catalyst‑free) transesterification
of diols and glycerol with dimethyl carbonate: a flexible reaction for batch and continuous‑flow
applications. ACS Sustain Chem Eng 4:6144–6151
50. Lari GM, de Moura ABL, Weimann L, Mitchell S, Mondelli C, Pérez‑Ramírez J (2017) Design of
a technical Mg–Al mixed oxide catalyst for the continuous manufacture of glycerol carbonate. J
Mater Chem A 5:16200–16211
51. Cheng Y‑T, Huber GW (2012) Production of targeted aromatics by using Diels–Alder classes of
reactions with furans and olefins over ZSM‑5. Green Chem 14:3114–3125
52. Zhao Y, Pan T, Zuo Y, Guo Q‑X, Fu Y (2013) Production of aromatic hydrocarbons through cata‑
lytic pyrolysis of 5‑hydroxymethylfurfural from biomass. Bioresour Technol 147:37–42
53. Tamiyakul S, Ubolcharoen W, Tungasmita DN, Jongpatiwut S (2015) Conversion of glycerol to
aromatic hydrocarbons over Zn‑promoted HZSM‑5 catalysts. Catal Today 256:325–335
54. Zimmermann H (2013) Propene. In: Ullmann’s Editorial Advisory Board (eds) Ullmann’s encyclo‑
pedia of industrial chemistry. Wiley‑VCH, Weinheim, pp 1–18
55. Mota CJA, Gonçalves VLC, Mellizo JE, Rocco AM, Fadigas JC, Gambetta R (2016) Green pro‑
pene through the selective hydrogenolysis of glycerol over supported iron‑molybdenum catalyst:
the original history. J Mol Catal A Chem 422:158–164
56. Brazdil JF (2012) Acrylonitrile. In: Ullmann’s Editorial Advisory Board (eds) Ullmann’s encyclo‑
pedia of industrial chemistry. Wiley‑VCH, Weinheim, pp 1–10
57. Guerrero‑Pérez MO, Bañares MA (2008) New reaction: conversion of glycerol into acrylonitrile.
ChemSusChem 1:511–513
58. Liebig C, Paul S, Katryniok B, Guillon C, Couturier J‑L, Dubois J‑L, Dumeignil F, Hoelderich
WF (2013) Glycerol conversion to acrylonitrile by consecutive dehydration over WO 3 /TiO 2 and
ammoxidation over Sb‑(Fe, V)‑O. Appl Catal B Environ 132–133:170–182
59. Sun D, Yamada Y, Sato S, Ueda W (2017) Glycerol as a potential renewable raw material for
acrylic acid production. Green Chem 19:3186–3213
60. Chieregato A, Soriano MD, García‑González E, Puglia G, Basile F, Concepción P, Bandinelli C,
López Nieto JM, Cavani F (2015) Multielement crystalline and pseudocrystalline oxides as effi‑
cient catalysts for the direct transformation of glycerol into acrylic acid. ChemSusChem 8:398–406
61. Li X, Zhang Y (2016) Oxidative dehydration of glycerol to acrylic acid over vanadium‑substituted
cesium salts of Keggin‑type heteropolyacids. ACS Catal 6:2785–2791
62. Liu R, Wang T, Cai D, Jin Y (2014) Highly efficient production of acrylic acid by sequential dehy‑
dration and oxidation of glycerol. Ind Eng Chem Res 53:8667–8674
63. Mäki‑Arvela P, Simakova IL, Salmi T, Murzin DY (2014) Production of lactic acid/lactates from
biomass and their catalytic transformations to commodities. Chem Rev 114:1909–1971
64. Peng J, Li X, Tang C, Bai W (2014) Barium sulphate catalyzed dehydration of lactic acid to acrylic
acid. Green Chem 16:108–111
65. Li X, Chen Z, Cao P, Pu W, Zou W, Tang C, Dong L (2017) Ammonia promoted barium sulfate
catalyst for dehydration of lactic acid to acrylic acid. RSC Adv 7:54696–54705
66. Lohbeck K, Haferkorn H, Fuhrmann W, Fedtke N (2000) Maleic and fumaric acids. In: Ullmann’s
Editorial Advisory Board (eds) Ullmann’s encyclopedia of industrial chemistry. Wiley‑VCH, Wein‑
heim, pp 145–155
67. Li X, Ko J, Zhang Y (2018) Highly efficient gas‑phase oxidation of renewable furfural to maleic
anhydride over plate vanadium phosphorus oxide catalyst. ChemSusChem 11:612–618
68. Zhang X, Fevre M, Jones GO, Waymouth RM (2018) Catalysis as an enabling science for sustain‑
able polymers. Chem Rev 118:839–885
69. Zhu S, Gao X, Zhu Y, Li Y (2015) Promoting effect of WO x on selective hydrogenolysis of glycerol
to 1,3‑propanediol over bifunctional Pt‑WO x /Al 2 O 3 catalysts. J Mol Catal A Chem 398:391–398
70. Li M, Li G, Li N, Wang A, Dong W, Wang X, Cong Y (2014) Aqueous phase hydrogenation of
levulinic acid to 1,4‑pentanediol. Chem Commun 50:1414–1416
71. Xiao B, Zheng M, Li X, Pang J, Sun R, Wang H, Pang X, Wang A, Wang X, Zhang T (2016) Syn‑
thesis of 1,6‑hexanediol from HMF over double‑layered catalysts of Pd/SiO 2 + Ir–ReO x /SiO 2 in a
fixed‑bed reactor. Green Chem 18:2175–2184
72. De Clercq R, Dusselier M, Sels BF (2017) Heterogeneous catalysis for bio‑based polyester mono‑
mers from cellulosic biomass: advances, challenges and prospects. Green Chem 19:5012–5040
73. Xia J, Yu D, Hu Y, Zou B, Sun P, Li H, Huang H (2011) Sulfated copper oxide: an efficient catalyst
for dehydration of sorbitol to isosorbide. Catal Commun 12:544–547
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