The jet aerator as oxygen supplier for the electrochemical generation of H2O2

被引:49
作者
Perez, J. F. [1 ]
Llanos, J. [1 ]
Saez, C. [1 ]
Lopez, C. [1 ]
Canizares, P. [1 ]
Rodrigo, M. A. [1 ]
机构
[1] Univ Castilla La Mancha, Chem Engn Dept, Fac Chem Sci & Technol, Edificio Enrique Costa Novella, E-13071 Ciudad Real, Spain
关键词
Electrogeneration; Hydrogen peroxide; Jet aerator; Flow-through; Carbon felt; ELECTRO-FENTON PROCESS; RETICULATED VITREOUS CARBON; MODIFIED GRAPHITE FELT; GAS-DIFFUSION CATHODE; HYDROGEN-PEROXIDE; ORGANIC POLLUTANTS; REDUCTION REACTION; DISSOLVED-OXYGEN; DEGRADATION; WATER;
D O I
10.1016/j.electacta.2017.06.085
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The hydrogen peroxide is a key and versatile compound that can be readily produced in one-pot electrochemical reactors via the 2 e oxygen reduction reaction. In all the electrolyzers studied up to date, the external aeration is carried out by means of a compressor. In this work, the compressor is substituted by a device based on the Venturi effect to minimize the acquisition, maintenance and operating costs associated to the aeration of the reactor. Interestingly, it was found that this aerator can super saturate in oxygen the solution thanks to the formation of air bubbles. The catalytic effect of carbon black (CB) and/or polytetrafluoroethylene (PTFE) to increase the production of H2O2 was studied, observing a synergistic effect when the CB/PTFE mixture was deposited on the carbon felt cathode. Efficient hydrogen peroxide generation was obtained at 15 mAcm(-2): instantaneous production rate of around 9.2 mg H2O2 h(-1) cm(-2) and a corresponding current efficiency in the order of 90%. The limiting current density increased when the jet aerator was used thanks to i) the super saturation of the solution (dissolved oxygen + air bubbles) and ii) the ability of the CB/ PTFE modified carbon felt to use them as oxygen source. The jet aerator is rather promising for the electrochemical generation of hydrogen peroxide. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:466 / 474
页数:9
相关论文
共 36 条
[1]   In Situ Electrochemical Generation of Hydrogen Peroxide in Alkaline Aqueous Solution by using an Unmodified Gas Diffusion Electrode [J].
Barros, Willyam R. P. ;
Ereno, Thais ;
Tavares, Ana C. ;
Lanza, Marcos R. V. .
CHEMELECTROCHEM, 2015, 2 (05) :714-719
[2]  
Brillas E., 2011, Synthetic Diamond Films: Preparation, Electrochemistry, Characterization, and Applications
[3]   Treatment of industrial effluents by electrochemical generation of H2O2 using an RVC cathode in a parallel plate reactor [J].
Bustos, Yaneth A. ;
Gabriel Rangel-Peraza, Jesus ;
Neftali Rojas-Valencia, Ma. ;
Bandala, Erick R. ;
Alvarez-Gallegos, Alberto ;
Vargas-Estrada, Laura .
ENVIRONMENTAL TECHNOLOGY, 2016, 37 (07) :815-827
[4]   Hydrogen peroxide synthesis: An outlook beyond the anthraquinone process [J].
Campos-Martin, Jose M. ;
Blanco-Brieva, Gema ;
Fierro, Jose L. G. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2006, 45 (42) :6962-6984
[5]   Hydrogen Peroxide: A Key Chemical for Today's Sustainable Development [J].
Ciriminna, Rosaria ;
Albanese, Lorenzo ;
Meneguzzo, Francesco ;
Pagliaro, Mario .
CHEMSUSCHEM, 2016, 9 (24) :3374-3381
[6]   Mass transport studies during dissolved oxygen reduction to hydrogen peroxide in a filter-press electrolyzer using graphite felt, reticulated vitreous carbon and boron-doped diamond as cathodes [J].
Coria, Gabriela ;
Perez, Tzayam ;
Sires, Ignasi ;
Nava, Jose L. .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2015, 757 :225-229
[7]   A REVIEW OF SLURRY AERATION .3. PERFORMANCE OF AERATORS [J].
CUMBY, TR .
JOURNAL OF AGRICULTURAL ENGINEERING RESEARCH, 1987, 36 (03) :175-206
[8]  
Dorado F., 2002, CHEM ED, V7, P90
[9]   Switching Off Hydrogen Peroxide Hydrogenation in the Direct Synthesis Process [J].
Edwards, Jennifer K. ;
Solsona, Benjamin ;
N, Edwin Ntainjua ;
Carley, Albert F. ;
Herzing, Andrew A. ;
Kiely, Christopher J. ;
Hutchings, Graham J. .
SCIENCE, 2009, 323 (5917) :1037-1041
[10]   Colorimetric determination of hydrogen peroxide [J].
Eisenberg, GM .
INDUSTRIAL AND ENGINEERING CHEMISTRY-ANALYTICAL EDITION, 1943, 15 :327-328