Biofine Hydrolysis Process and Derivative Product Upgrading Technologies 203
50. Deng, L., Li, J., Lai, D., Fu, Y., and Guo, Q., Angewandte Chemie International Edition,
48, 6529–6532 (2009).
51. Horvath, I., Mehdi, H., Fabos, V., Boda, L., and Mika, L., Green Chemistry, 10, 238–242
(2008).
52. Serrano-Ruiz, J., Wang, D., and Dumesic, J., Green Chemistry, 12, 574–577 (2010).
53. Ayoub, P. and Lange, J. “Process for converting levulinic acid into pentanoic acid,”
World Patent No. WO/2008/142127 (2008).
54. Renz, M., “Ketonization of carboxylic acids by decarboxylation mechanism and scope,”
European Journal of Organic Chemistry, 6, 979–988 (2005).
55. Serrano-Ruiz, J. and Dumesic, J., Green Chemistry, 11, 1101–1104 (2009).
56. Werst, R.M., Liu, Z., Peter, M., and Dumesic, J., ChemSusChem, 1, 417–424 (2008).
57. Alonso, D., Bond, J., Serrano-Ruiz, J., and Dumesic, J., Green Chemistry, 12, 992–999
(2010).
58. Bond, J., Alonso, D., Wang, D., West, R., and Dumesic, J., Science, 327, 1110–1114 (2010).
59. Barrett, C., Chheda, J., Huber, G., and Dumesic, J., Applied Catalysis B: Environmental,
66, 111–118 (2006).
60. Bizzari, S. and Ishikawa, Y., CEH Report: Formic Acid. SRI, Menlo Park, CA (2001).
61. Girisuta, B., Kalogiannis, K.G., Dussan, K., Leahy, J.J., Hayes, M.H.B., and
Stefanidis, S., “An integrated process for the production of platform chemicals
and diesel miscible fuels by acid-catalyzed hydrolysis and downstream upgrading
of the acid hydrolysis residues with thermal and catalytic pyrolysis,” Bioresource
Technology, 126, 92–100 (2012).
62. Melligan, F., Dussan, K., Auccaise, R., Novotny, E.H., Leahy, J.J., Hayes, M.H.B., and
Kwapinski, W., “Characterisation of the products from pyrolysis of residues after acid
hydrolysis of Miscanthus,” Bioresource Technology, 108, 258–263 (2012).
63. Melligan, F., Auccaise, R., Novotny, E.H., Leahy, J.J., and Hayes, M.H.B., “Pressurised
pyrolysis of Miscanthus using a fixed bed reactor,” Bioresource Technology, 102 (3),
3466–3470 (2011).
64. Hayes, D.J.M., “DIBANET, an integrated approach for making the best use of biomass,”
1st Iberoamerican Congress on Biorefineries, October 24–26, Los Cabos, Mexico (2012).
65. Hayes, D.J.M., “Review of biomass feedstocks and guidelines of best practice,”
DIBANET WP2 Report, 150p (2012).
66. Hayes, D.J., “Protection of NIR calibration equations and their application for biomass
analysis,” DIBANET WP2 Report, 71p (2012).
67. Donaldson, L.A., Wong, K.K.Y., and Mackie, K.L., “Ultrastructure of steam-exploded
wood,” Wood Science and Technology, 22, 103–114 (1988).
68. Fitzpatrick, S.W., “Lignocellulose degradation to furfural and levulinic acid,” US Patent
No. 4897497 (1990).
69. Fitzpatrick, S.W., “Production of levulinic acid from carbohydrate-containing materials,”
US Patent No. 5608105 (1997).
50. Deng, L., Li, J., Lai, D., Fu, Y., and Guo, Q., Angewandte Chemie International Edition,
48, 6529–6532 (2009).
51. Horvath, I., Mehdi, H., Fabos, V., Boda, L., and Mika, L., Green Chemistry, 10, 238–242
(2008).
52. Serrano-Ruiz, J., Wang, D., and Dumesic, J., Green Chemistry, 12, 574–577 (2010).
53. Ayoub, P. and Lange, J. “Process for converting levulinic acid into pentanoic acid,”
World Patent No. WO/2008/142127 (2008).
54. Renz, M., “Ketonization of carboxylic acids by decarboxylation mechanism and scope,”
European Journal of Organic Chemistry, 6, 979–988 (2005).
55. Serrano-Ruiz, J. and Dumesic, J., Green Chemistry, 11, 1101–1104 (2009).
56. Werst, R.M., Liu, Z., Peter, M., and Dumesic, J., ChemSusChem, 1, 417–424 (2008).
57. Alonso, D., Bond, J., Serrano-Ruiz, J., and Dumesic, J., Green Chemistry, 12, 992–999
(2010).
58. Bond, J., Alonso, D., Wang, D., West, R., and Dumesic, J., Science, 327, 1110–1114 (2010).
59. Barrett, C., Chheda, J., Huber, G., and Dumesic, J., Applied Catalysis B: Environmental,
66, 111–118 (2006).
60. Bizzari, S. and Ishikawa, Y., CEH Report: Formic Acid. SRI, Menlo Park, CA (2001).
61. Girisuta, B., Kalogiannis, K.G., Dussan, K., Leahy, J.J., Hayes, M.H.B., and
Stefanidis, S., “An integrated process for the production of platform chemicals
and diesel miscible fuels by acid-catalyzed hydrolysis and downstream upgrading
of the acid hydrolysis residues with thermal and catalytic pyrolysis,” Bioresource
Technology, 126, 92–100 (2012).
62. Melligan, F., Dussan, K., Auccaise, R., Novotny, E.H., Leahy, J.J., Hayes, M.H.B., and
Kwapinski, W., “Characterisation of the products from pyrolysis of residues after acid
hydrolysis of Miscanthus,” Bioresource Technology, 108, 258–263 (2012).
63. Melligan, F., Auccaise, R., Novotny, E.H., Leahy, J.J., and Hayes, M.H.B., “Pressurised
pyrolysis of Miscanthus using a fixed bed reactor,” Bioresource Technology, 102 (3),
3466–3470 (2011).
64. Hayes, D.J.M., “DIBANET, an integrated approach for making the best use of biomass,”
1st Iberoamerican Congress on Biorefineries, October 24–26, Los Cabos, Mexico (2012).
65. Hayes, D.J.M., “Review of biomass feedstocks and guidelines of best practice,”
DIBANET WP2 Report, 150p (2012).
66. Hayes, D.J., “Protection of NIR calibration equations and their application for biomass
analysis,” DIBANET WP2 Report, 71p (2012).
67. Donaldson, L.A., Wong, K.K.Y., and Mackie, K.L., “Ultrastructure of steam-exploded
wood,” Wood Science and Technology, 22, 103–114 (1988).
68. Fitzpatrick, S.W., “Lignocellulose degradation to furfural and levulinic acid,” US Patent
No. 4897497 (1990).
69. Fitzpatrick, S.W., “Production of levulinic acid from carbohydrate-containing materials,”
US Patent No. 5608105 (1997).
