Hydrogen production with carbon nanotubes based cathode catalysts in microbial electrolysis cells
โ Scribed by Liyong Wang; Yingwen Chen; Qiong Huang; Yangyang Feng; Shemin Zhu; Shubao Shen
- Book ID
- 102313881
- Publisher
- Wiley (John Wiley & Sons)
- Year
- 2012
- Tongue
- English
- Weight
- 273 KB
- Volume
- 87
- Category
- Article
- ISSN
- 0268-2575
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โฆ Synopsis
Abstract
BACKGROUND: Microbial electrolysis cell (MEC) has been considered as a promising new technology for the production of bioโhydrogen from renewable biomass, but lowโcost alternatives to typical cathode material (platinum) are needed. In this study, CNTsโbased electrode alternatives to Pt were examined in a singleโchamber membraneโfree MEC. To the best of our knowledge, the use of carbon nanotube as the MEC cathode catalyst has not been reported so far.
RESULTS: For all cathodes, hydrogen production rates increased in response to increase in voltage and the highest hydrogen production was achieved at 0.9 V. At an applied voltage of 0.9 V, MECs with Pt/MWNT cathodes obtained a hydrogen production rate of 1.42 m^3^ m^โ3^ day^โ1^ with a current density of 192 A m^โ3^, a coulombic efficiency of 94%, a cathodic hydrogen recovery of 65%, and electrical energy efficiency based on electricity input of 126%.
CONCLUSIONS: The Pt/MWNT cathode developed demonstrated better electrocatalytic activity than the MWNT cathode and achieved performance comparable with the Pt cathode in terms of hydrogen production rate. These results demonstrate the great potential of using carbon cloth with CNTsโbased electrodes as a cathode material for MECs. Copyright ยฉ 2012 Society of Chemical Industry
๐ SIMILAR VOLUMES
Gas diffusion cathodes with electrodeposited nickel (Ni) particles have been developed and tested for hydrogen production in a continuous flow microbial electrolysis cell (MEC). A high catalytic activity of electrodeposited Ni particles in such a MEC was obtained without a proton exchange membrane,