Anode materials for microbial fuel cells

Author(s):  
A. Dumitru ◽  
K. Scott
2016 ◽  
Vol 219 ◽  
pp. 37-44 ◽  
Author(s):  
D. Hidalgo ◽  
T. Tommasi ◽  
K. Velayutham ◽  
B. Ruggeri

2018 ◽  
Vol 2 ◽  
pp. 29-37 ◽  
Author(s):  
Elena Kipf ◽  
Johannes Erben ◽  
Roland Zengerle ◽  
Johannes Gescher ◽  
Sven Kerzenmacher

2015 ◽  
Vol 27 (5) ◽  
pp. 1584-1588
Author(s):  
Juan Wang ◽  
Hui Xiong ◽  
Zhensheng Xiong ◽  
Fangcheng Xu ◽  
Jing Fang ◽  
...  

2010 ◽  
Vol 25 (9) ◽  
pp. 2167-2171 ◽  
Author(s):  
Ying Liu ◽  
Falk Harnisch ◽  
Katja Fricke ◽  
Uwe Schröder ◽  
Victor Climent ◽  
...  

Author(s):  
Jerome R ◽  
Brahmari Shetty ◽  
Dhanraj Ganapathy ◽  
Preethika Murugan ◽  
Raji Atchudan ◽  
...  

Abstract Modification of anodes with highly biocompatible materials could enhance bacterial adhesion, growth, and improve the rate of electron-transfer ability in microbial fuel cells (MFCs). As such, there has been increasing interest in the development of innovative anode materials to prepare high-performance MFCs. We report the synthesis of poly(3,4-ethylene dioxythiophene):poly(4-styrene sulfonate) (PEDOT:PSS) doped with thermally expanded graphite (TEG) composite coated carbon felt (CF) as anode for MFCs. For this purpose, as-synthesized PEDOT:PSS/TEG composite was characterized using high-resolution scanning electron microscopy (HR-SEM), and Raman and Fourier transform infrared (FT-IR) spectroscopies which indicated successful incorporation of TEG within PEDOT:PSS film. Furthermore, the electrochemical activity of the PEDOT:PSS/TEG coated CF was employed as the anode in the MFCs with sewage water as an anolyte. PEDOT:PSS/TEG@CF anode exhibited higher ion-transfer ability, superior bio-electrochemical conductivity, and excellent capacitance. Using the PEDOT:PSS/TEG@CF anode, we have constructed MFCs which exhibited good power (68.7 mW/m2) and current (969.3 mA/m2) densities compared to the unmodified CF based anode. The reliability of the MFCs performance was also investigated by testing three independently prepared MFCs with PEDOT:PSS/TEG@CF anodes which all showed a constant voltage (~540 mV) due to the higher stability and biocompatibility of PEDOT:PSS/TEG@CF.


2022 ◽  
Vol 334 ◽  
pp. 08005
Author(s):  
Elisa Casula ◽  
Michele Mascia ◽  
Giorgia De Gioannis ◽  
Mirella Di Lorenzo ◽  
Marco Isipato ◽  
...  

Microbial fuel cells (MFCs) exploit the metabolic activity of electroactive microorganisms for oxidation of organic compounds and extracellular electron transfer to an external electrode. the technology is associate with very slowreaction rates, resulting in low current densities. Anodes with high specific surface should be used to increase the overall electricity generation. Carbon-based 3D materials, with high surface per unit of volume, are largely used anode materials in MFCs, although may show significant lack in efficiency due to mass transfer limitations, concentration gradients, velocity distribution and resistivity of the material. Consequently, the concomitant effect of several parameters should be assessed and quantified to design highly performing MFCs implementing 3D anode materials. In this work, miniature MFCs with 3D anodes are mathematically modelled to quantify the effect of operative parameters on performance. The model combines equations of charge conservation, mass transport phenomena, hydrodynamics, and kinetics of the involved processes under transient conditions, and provides 3D profiles with time of velocity, biofilm thickness, substrate concentration, current density and potential. The solution predicts a laminar flow, as it was expected with the low flow rates used. The concentration profiles show the consumption of substrate in the anode, with low values of local concentrations depending on organic load in the feed stream. The model also provides a versatile tool to optimise the operative conditions of the system, managing the flow arrangements to maximise either substrate removal or electricity generation.


Materials ◽  
2020 ◽  
Vol 13 (9) ◽  
pp. 2078 ◽  
Author(s):  
Asim Ali Yaqoob ◽  
Mohamad Nasir Mohamad Ibrahim ◽  
Mohd Rafatullah ◽  
Yong Shen Chua ◽  
Akil Ahmad ◽  
...  

The recycling and treatment of wastewater using microbial fuel cells (MFCs) has been attracting significant attention as a way to control energy crises and water pollution simultaneously. Despite all efforts, MFCs are unable to produce high energy or efficiently treat pollutants due to several issues, one being the anode’s material. The anode is one of the most important parts of an MFC. Recently, different types of anode materials have been developed to improve the removal rate of pollutants and the efficiency of energy production. In MFCs, carbon-based materials have been employed as the most commonly preferred anode material. An extensive range of potentials are presently available for use in the fabrication of anode materials and can considerably minimize the current challenges, such as the need for high quality materials and their costs. The fabrication of an anode using biomass waste is an ideal approach to address the present issues and increase the working efficiency of MFCs. Furthermore, the current challenges and future perspectives of anode materials are briefly discussed.


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