Difference between revisions of "Team:CHINA CD UESTC/Description"
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− | Biofuel cell is divided into microbial fuel cell and enzymatic biofuel cell (EBFC). | + | Biofuel cell is divided into microbial fuel cell and enzymatic biofuel cell (EBFC). EBFC is a special kind of fuel cell which uses organics as fuels and enzymes as catalysts. EBFC is generally separated into anode region and cathode region by proton exchange membrane. Fuels are oxidized under the action of enzyme in the anode region. Oxygen is reduced in the cathode region. |
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− | EBFC have broad application prospect, so we want to create a new type of device to | + | EBFC have broad application prospect, so we want to create a new type of device to develop the bioenergy. |
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− | The main configurations of enzymatic fuel cells | + | The main configurations of enzymatic fuel cells involve bioanodes based on glucose oxidase, glucose dehydrogenase or lactate oxidase and biocathodes based on copper oxidases such as laccase, tyrosinase or bilirubin oxidase. This concept was initiated by Mano et al. who implanted microbioelectrodes based on osmium redox hydrogels, in a grape obtaining thus 2.4mW at 0.54v |
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− | Meanwhile, | + | Meanwhile, laccase has the property of oxidizing a wide range of substrates e.g., phenolic compounds, so it can be used in sewage disposal. Our project used these two enzymes and transformed the cathode. We constructed the expression vector of RFP + laccase and transformed it into <i>E. Coli</i>. The red fluorescence produced by RFP can be used as an indication of laccase’s concentration and activity. According to the method of electron transfer, EBFC can be divided into electronic media electrodes and direct electrochemical electrodes. Considered that the latter has high catalytic efficiency and small restriction by environment, we tried to enrich the laccase on the cathode to enhance the redox potential of our EFBC. |
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Revision as of 10:32, 15 September 2015
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DESCRIPTION
Do you know how to solve energy crisis utilizing biological methods? Have you ever heard about constructing a cell with enzyme? Nothing is too strange in the nature. There are many special properties of bacteria in the nature such as producing electricity, being attracted by magnet. If you want to learn about the way we chose to solve energy crisis, please read the description!