Performance of polypyrrole coated metal oxide composite electrodes for benthic microbial fuel cell (BMFC)

2020 ◽  
Vol 8 (2) ◽  
pp. 102757 ◽  
Author(s):  
Om Prakash ◽  
Alka Mungray ◽  
Shobhana Chongdar ◽  
Suresh Kumar Kailasa ◽  
Arvind Kumar Mungray
Author(s):  
Adrian Nur ◽  
Jundi Rofi’uddien ◽  
Muhammad Abdul Basir ◽  
Nazriati Nazriati ◽  
Fauziatul Fajaroh

<p>The metal oxide composite is used to the microelectronic circuit, piezoelectric, fuel cell, sensor, catalyst, coating for preventing corrosion, and solar cell. The ZnO/CuO is one of the metal oxide composites. The combination of ZnO and CuO is the potential composite used to the catalyst and the anti-bacterial agent. The method used in this research was the electrochemical method in the acetate acid solution. The acetate acid solution used in this research is cheaper than the succinite acid used in the previous research. The electrochemical method has advantages due the easy to control and cheap. The composite resulted was analyzed by the XRD and the FTIR. The aims of this analysis are to know the crystallite phase, structure, and the functional groups of the particle resulted. The analysis showed that the ZnO-CuO composite can be resulted by the electrochemical method.</p>


2020 ◽  
Vol 11 ◽  
pp. 100449
Author(s):  
Arpita Nandy ◽  
Jagoš R. Radović ◽  
Breda Novotnik ◽  
Mohita Sharma ◽  
Stephen R. Larter ◽  
...  

2018 ◽  
Vol 2 (2) ◽  
pp. 59
Author(s):  
Adrian Nur ◽  
Jundi Rofi’uddien ◽  
Muhammad Abdul Basir ◽  
Nazriati Nazriati ◽  
Fauziatul Fajaroh

<p>The metal oxide composite is used to the microelectronic circuit, piezoelectric, fuel cell, sensor, catalyst, coating for preventing corrosion, and solar cell. The ZnO/CuO is one of the metal oxide composites. The combination of ZnO and CuO is the potential composite used to the catalyst and the anti-bacterial agent. The method used in this research was the electrochemical method in the acetate acid solution. The acetate acid solution used in this research is cheaper than the succinite acid used in the previous research. The electrochemical method has advantages due the easy to control and cheap. The composite resulted was analyzed by the XRD and the FTIR. The aims of this analysis are to know the crystallite phase, structure, and the functional groups of the particle resulted. The analysis showed that the ZnO-CuO composite can be resulted by the electrochemical method.</p>


2020 ◽  
Vol MA2020-01 (52) ◽  
pp. 2878-2878
Author(s):  
Wei Feng ◽  
Han-Yi Chen ◽  
Jin-Hua Huang

2010 ◽  
Vol 77 (3) ◽  
pp. 1069-1075 ◽  
Author(s):  
Urania Michaelidou ◽  
Annemiek ter Heijne ◽  
Gerrit Jan W. Euverink ◽  
Hubertus V. M. Hamelers ◽  
Alfons J. M. Stams ◽  
...  

ABSTRACTFour types of titanium (Ti)-based electrodes were tested in the same microbial fuel cell (MFC) anodic compartment. Their electrochemical performances and the dominant microbial communities of the electrode biofilms were compared. The electrodes were identical in shape, macroscopic surface area, and core material but differed in either surface coating (Pt- or Ta-coated metal composites) or surface texture (smooth or rough). The MFC was inoculated with electrochemically active, neutrophilic microorganisms that had been enriched in the anodic compartments of acetate-fed MFCs over a period of 4 years. The original inoculum consisted of bioreactor sludge samples amended withGeobacter sulfurreducensstrain PCA. Overall, the Pt- and Ta-coated Ti bioanodes (electrode-biofilm association) showed higher current production than the uncoated Ti bioanodes. Analyses of extracted DNA of the anodic liquid and the Pt- and Ta-coated Ti electrode biofilms indicated differences in the dominant bacterial communities. Biofilm formation on the uncoated electrodes was poor and insufficient for further analyses. Bioanode samples from the Pt- and Ta-coated Ti electrodes incubated with Fe(III) and acetate showed several Fe(III)-reducing bacteria, of which selected species were dominant, on the surface of the electrodes. In contrast, nitrate-enriched samples showed less diversity, and the enriched strains were not dominant on the electrode surface. Isolated Fe(III)-reducing strains were phylogenetically related, but not all identical, toGeobacter sulfurreducensstrain PCA. Other bacterial species were also detected in the system, such as aPropionicimonas-related species that was dominant in the anodic liquid andPseudomonas-,Clostridium-,Desulfovibrio-,Azospira-, andAeromonas-related species.


2013 ◽  
Vol 45 (31) ◽  
pp. 1-11 ◽  
Author(s):  
D. H. Gutierrez ◽  
D. Peaslee ◽  
Z. Tanaka ◽  
N. Londono ◽  
M. Meyyapan ◽  
...  

NANO ◽  
2014 ◽  
Vol 09 (06) ◽  
pp. 1430002 ◽  
Author(s):  
M. Y. HO ◽  
P. S. KHIEW ◽  
D. ISA ◽  
T. K. TAN ◽  
W. S. CHIU ◽  
...  

With the emerging technology in the 21st century, which requires higher electrochemical performances, metal oxide composite electrodes in particular offer complementary properties of individual materials via the incorporation of both physical and chemical charge storage mechanism together in a single electrode. Numerous works reviewed herein have identified a wide variety of attractive metal oxide-based composite electrode material for symmetric and asymmetric electrochemical capacitors. The focus of the review is the detailed literature data and discussion regarding the electrochemical performance of various metal oxide composite electrodes fabricated from different configurations including binary and ternary composites. Additionally, projection of future development in hybrid capacitor coupling lithium metal oxides and carbonaceous materials are found to obtain significantly higher energy storage than currently available commercial electrochemical capacitors. This review describes the novel concept of lithium metal oxide electrode materials which are of value to researchers in developing high-energy and enhanced-cyclability electrochemical capacitors comparable to Li -ion batteries. In order to fully exploit the potential of metal oxide composite electrode materials, developing low cost, environment-friendly nanocomposite electrodes is certainly a research direction that should be extensively investigated in the future.


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