Characterization of oxidized carbon foil as a low-cost alternative to carbon felt-based electrodes in bioelectrochemical systems

被引:12
作者
Cercado, Bibiana [1 ,3 ]
Chazaro-Ruiz, Luis F. [1 ]
Trejo-Cordova, Gabriel [3 ]
Buitron, German [2 ]
Razo-Flores, Elias [1 ]
机构
[1] Inst Potosino Invest Cient & Tecnol AC, Div Ciencias Ambientales, Camino Presa San Jose 2055,Lomas 4A Secc, San Luis Potosi 78216, San Luis Potosi, Mexico
[2] Univ Nacl Autonoma Mexico, Inst Ingn, Unidad Acad Juriquilla, Lab Invest Proc Avanzados Tratamiento Aguas, Campus Juriquilla,Blvd Juriquilla 3001, Santiago De Queretaro 76230, Queretaro, Mexico
[3] Ctr Invest & Desarrollo Tecnol Electroquim SC, Parque Tecnol Queretaro Sanfandila, Pedro Escobedo 76703, Queretaro, Mexico
关键词
Carbon foil; Carbon felt; Oxidation treatments; Specific surface area; Current density; Bioelectrode support; ELECTROCHEMICAL SYSTEMS; ANODE; ENERGY; PRETREATMENT; PERFORMANCE; GENERATION; BEHAVIOR; CATHODE; CLOTH;
D O I
10.1007/s10800-015-0906-0
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The recent development of bioelectrochemical systems (BESs) is based on the growth of microorganisms on carbon electrode materials. Carbon felt and cloth are the most widely used electrode materials; however, less expensive alternative materials are required when BESs are used for wastewater treatment. In this work, graphite carbon foil was modified using chemical, thermal, and electrochemical oxidation methods to improve its surface characteristics, and the resulting material was compared with oxidized carbon felt. The materials were physically, chemically, and electrochemically characterized. The isotherms revealed that thermal oxidation increased the surface area of the carbon foil by 39 %, reaching a value of 26.2 m(2) g(-1). Electrochemical impedance spectroscopy showed that the charge transfer resistance of the untreated carbon foil was 445 Omega, which decreased to 34 Omega after electrochemical oxidation. Additionally, cyclic voltammetry revealed a 100-fold increase in current density for the foil and felt materials following electrochemical oxidation. Based on its large surface area, low charge transfer resistance, remarkable current density under polarization, and comparatively low cost, the graphite carbon foil was identified as a promising alternative that could be used for constructing bioelectrodes.
引用
收藏
页码:217 / 227
页数:11
相关论文
共 32 条
[1]  
[Anonymous], CARBON
[2]   Biotic and abiotic characterization of bioanodes formed on oxidized carbon electrodes as a basis to predict their performance [J].
Cercado, Bibiana ;
Felipe Chazaro-Ruiz, Luis ;
Ruiz, Vianey ;
de Jesus Lopez-Prieto, Israel ;
Buitron, German ;
Razo-Flores, Elias .
BIOSENSORS & BIOELECTRONICS, 2013, 50 :373-381
[3]   Electrochemical micro-structuring of graphite felt electrodes for accelerated formation of electroactive biofilms on microbial anodes [J].
Cercado-Quezada, Bibiana ;
Delia, Marie-Line ;
Bergel, Alain .
ELECTROCHEMISTRY COMMUNICATIONS, 2011, 13 (05) :440-443
[4]  
Compton RG., 2018, UNDERSTANDING VOLTAM, DOI [DOI 10.1142/6430, DOI 10.1142/Q0155]
[5]   Power generation using an activated carbon fiber felt cathode in an upflow microbial fuel cell [J].
Deng, Qian ;
Li, Xinyang ;
Zuo, Jiane ;
Ling, Alison ;
Logan, Bruce E. .
JOURNAL OF POWER SOURCES, 2010, 195 (04) :1130-1135
[6]   Nano-structured carbon as electrode material in microbial fuel cells: A comprehensive review [J].
Ghasemi, Mostafa ;
Daud, Wan Ramli Wan ;
Hassan, Sedky H. A. ;
Oh, Sang-Eun ;
Ismail, Manal ;
Rahimnejad, Mostafa ;
Jahim, Jamaliah Md .
JOURNAL OF ALLOYS AND COMPOUNDS, 2013, 580 :245-255
[7]   Water uptake in biochars: The roles of porosity and hydrophobicity [J].
Gray, Myles ;
Johnson, Mark G. ;
Dragila, Maria I. ;
Kleber, Markus .
BIOMASS & BIOENERGY, 2014, 61 :196-205
[8]   Effect of fiber diameter on the behavior of biofilm and anodic performance of fiber electrodes in microbial fuel cells [J].
He, Guanghua ;
Gu, Yanli ;
He, Shuijian ;
Schroeder, Uwe ;
Chen, Shuiliang ;
Hou, Haoqing .
BIORESOURCE TECHNOLOGY, 2011, 102 (22) :10763-10766
[9]  
Kinoshita K., 1988, CARBON ELECTROCHEMIC
[10]   Microbial Fuel Cells: The Effects of Configurations, Electrolyte Solutions, and Electrode Materials on Power Generation [J].
Li, Fengxiang ;
Sharma, Yogesh ;
Lei, Yu ;
Li, Baikun ;
Zhou, Qixing .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2010, 160 (01) :168-181