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Jianbing Wang, Wan-peng Zhu, Shaoxia Yang, Wei Wang, Yunrui Zhou (2008)
Catalytic wet air oxidation of phenol with pelletized ruthenium catalystsApplied Catalysis B-environmental, 78
J. Niu, Hui Lin, Jiale Xu, Hao Wu, Yangyang Li (2012)
Electrochemical mineralization of perfluorocarboxylic acids (PFCAs) by ce-doped modified porous nanocrystalline PbO2 film electrode.Environmental science & technology, 46 18
Ning Li, C. Descorme, M. Besson (2007)
Catalytic wet air oxidation of aqueous solution of 2-chlorophenol over Ru/zirconia catalystsApplied Catalysis B-environmental, 71
F. Stüber, J. Font, A. Fortuny, C. Bengoa, A. Eftaxias, A. Fabregat (2005)
Carbon materials and catalytic wet air oxidation of organic pollutants in wastewaterTopics in Catalysis, 33
I. Arslan-Alaton, J. Ferry (2002)
H4SiW12O40-catalyzed oxidation of nitrobenzene in supercritical water: kinetic and mechanistic aspectsApplied Catalysis B-environmental, 38
M. Soria-Sánchez, Á. Maroto-Valiente, J. Álvarez-Rodríguez, V. Muñoz-Andrés, I. Rodríguez-Ramos, A. Guerrero-Ruíz (2011)
Carbon nanostrutured materials as direct catalysts for phenol oxidation in aqueous phaseApplied Catalysis B-environmental, 104
Ngoc Tran, M. Besson, C. Descorme (2011)
TiO2-supported gold catalysts in the catalytic wet air oxidation of succinic acid: influence of the preparation, the storage and the pre-treatment conditionsNew Journal of Chemistry, 35
Shao-xi Yang, Xiang Li, Wan-peng Zhu, Jianbing Wang, C. Descorme (2008)
Catalytic activity, stability and structure of multi-walled carbon nanotubes in the wet air oxidation of phenolCarbon, 46
R. Rocha, J. Sousa, Adrián Silva, M. Pereira, J. Figueiredo (2011)
Catalytic activity and stability of multiwalled carbon nanotubes in catalytic wet air oxidation of oxalic acid: The role of the basic nature induced by the surface chemistryApplied Catalysis B-environmental, 104
Mirjana Bistan, T. Tišler, A. Pintar (2012)
Ru/TiO2 catalyst for efficient removal of estrogens from aqueous samples by means of wet-air oxidationCatalysis Communications, 22
I. Chen, Shiow-Shyung Lin, Ching Wang, Lizone Chang, Jing-Song Chang (2004)
Preparing and characterizing an optimal supported ceria catalyst for the catalytic wet air oxidation of phenolApplied Catalysis B-environmental, 50
S. Lee, J. Carberry (1992)
Biodegradation of PCP enhanced by chemical oxidation pretreatmentWater Environment Research, 64
Wei Zhan, Xiaocong Wang, Daosheng Li, Yongzheng Ren, Dongqi Liu, Jianxiong Kang (2013)
Catalytic wet air oxidation of high concentration pharmaceutical wastewater.Water science and technology : a journal of the International Association on Water Pollution Research, 67 10
W. May (1996)
Wet Air Oxidation
F. Benítez, Juan García, J. Acero, F. Real, Gloria Roldán (2011)
Non-catalytic and catalytic wet air oxidation of pharmaceuticals in ultra-pure and natural watersProcess Safety and Environmental Protection, 89
Wan-peng Zhu, Yuejing Bin, Zhonghe Li, Zhan-peng Jiang, Tong Yin (2002)
Application of catalytic wet air oxidation for the treatment of H-acid manufacturing process wastewater.Water research, 36 8
G. Mestl, N. Maksimova, N. Keller, V. Roddatis, R. Schlögl (2001)
Carbon Nanofilaments in Heterogeneous Catalysis: An Industrial Application for New Carbon Materials?Angewandte Chemie, 40 11
H. Gomes, B. Machado, A. Ribeiro, I. Moreira, M. Rosário, Adrián Silva, J. Figueiredo, J. Faria (2008)
Catalytic properties of carbon materials for wet oxidation of aniline.Journal of hazardous materials, 159 2-3
Lei Zhao, Zhi‐zhong Sun, Jun Ma, Huiling Liu (2010)
Influencing mechanism of bicarbonate on the catalytic ozonation of nitrobenzene in aqueous solution by ceramic honeycomb supported manganeseJournal of Molecular Catalysis A-chemical, 322
L. Ji, Y. Shao, Zhaoyi Xu, Shourong Zheng, Dongqiang Zhu (2010)
Adsorption of monoaromatic compounds and pharmaceutical antibiotics on carbon nanotubes activated by KOH etching.Environmental science & technology, 44 16
M. Martín-Hernández, J. Carrera, M. Suárez-Ojeda, M. Besson, C. Descorme (2012)
Catalytic wet air oxidation of a high strength p-nitrophenol wastewater over Ru and Pt catalysts: Influence of the reaction conditions on biodegradability enhancementApplied Catalysis B-environmental, 123
D. Fu, Jiping Chen, Xinmiao Liang (2005)
Wet air oxidation of nitrobenzene enhanced by phenol.Chemosphere, 59 6
Hongyue Li, Hongbin Cao, Yuping Li, Y. Zhang, Hui Liu (2010)
Effect of organic compounds on nitrite accumulation during the nitrification process for coking wastewater.Water science and technology : a journal of the International Association on Water Pollution Research, 62 9
S. Kolaczkowski, P. Plucinski, F. Beltrán, F. Rivas, D. Mclurgh (1999)
Wet air oxidation: a review of process technologies and aspects in reactor designChemical Engineering Journal, 73
Shaoxia Yang, M. Besson, C. Descorme (2010)
Catalytic wet air oxidation of formic acid over Pt/CexZr1―xO2 catalysts at low temperature and atmospheric pressureApplied Catalysis B-environmental, 100
A. Njiribeako, Robert Hudgins, P. Silveston (1978)
Catalytic Oxidation of Phenol in Aqueous Solution over Copper OxideIndustrial & Engineering Chemistry Fundamentals, 17
P. Serp (2003)
Carbon nanotubes and nanofibers in catalysisApplied Catalysis A-general, 253
M. Suárez-Ojeda, F. Stüber, A. Fortuny, A. Fabregat, J. Carrera, J. Font (2005)
Catalytic wet air oxidation of substituted phenols using activated carbon as catalystApplied Catalysis B-environmental, 58
F. Luck (1999)
Wet air oxidation: past, present and futureCatalysis Today, 53
L. Oliviero, J. Barbier, D. Duprez (2003)
Wet Air Oxidation of nitrogen-containing organic compounds and ammonia in aqueous mediaApplied Catalysis B-environmental, 40
Shaoxia Yang, Xingang Wang, Hong-wei Yang, Yu Sun, Yunxia Liu (2012)
Influence of the different oxidation treatment on the performance of multi-walled carbon nanotubes in the catalytic wet air oxidation of phenol.Journal of hazardous materials, 233-234
Yi-Tin Wang (1992)
Effect of chemical oxidation on anaerobic biodegradation of model phenolic compoundsWater Environment Research, 64
V. Mishra, V. Mahajani, J. Joshi (1995)
Wet air oxidationIndustrial & Engineering Chemistry Research, 34
Shaoxia Yang, Zheng-Qian Liu, Xiaohui Huang, Bei-ping Zhang (2010)
Wet air oxidation of epoxy acrylate monomer industrial wastewater.Journal of hazardous materials, 178 1-3
Shiow-Shyung Lin, D. Chang, Ching Wang, Chia-Chrn Chen (2003)
Catalytic wet air oxidation of phenol by CeO2 catalyst--effect of reaction conditions.Water research, 37 4
C. Milone, A. Hameed, E. Piperopoulos, S. Santangelo, M. Lanza, S. Galvagno (2011)
Catalytic Wet Air Oxidation of p-Coumaric Acid over Carbon Nanotubes and Activated CarbonIndustrial & Engineering Chemistry Research, 50
Abstract Wet air oxidation (WAO) is one of effective technologies to eliminate hazardous, toxic and highly concentrated organic compounds in the wastewater. In the paper, multi-walled carbon nanotubes (MWCNTs), functionalized by O3, were used as catalysts in the absence of any metals to investigate the catalytic activity in the catalytic wet air oxidation (CWAO) of phenol, nitrobenzene (NB) and aniline at the mild operating conditions (reaction temperature of 155°C and total pressure of 2.5 MPa) in a batch reactor. The MWCNTs were characterized with scanning electron microscopy (SEM), transmission electron microscopy (TEM), gas adsorption measurements (BET), fourier transform infrared spectroscopy (FT-IR), and X-ray photoelectron spectroscopy (XPS). The functionalized MWCNTs showed good catalytic performance. In the CWAO of phenol over the functionalized MWCNTs, total phenol removal was obtained after 90 min run, and the reaction apparent activation energy was ca. 40 kJ·mol−1. The NB was not removed in the CWAO of single NB, while ca. 97% NB removal was obtained and 40% NB removal was attributed to the catalytic activity after 180 min run in the presence of phenol. Ca. 49% aniline conversion was achieved after 120 min run in the CWAO of aniline.
"Frontiers of Environmental Science & Engineering" – Springer Journals
Published: Jun 1, 2015
Keywords: Environment, general
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