Hydrogen production from inexhaustible supplies of fresh and salt water using microbial reverse-electrodialysis electrolysis cells
Reported parameters
No values extracted from this paper yet.
No 3D model is mapped to this paper yet. Parameter ranges above still place reported values on the literature distribution.
What they did
- System
- MREC
What worked
No outcome metrics extracted yet.
Abstract
There is a tremendous source of entropic energy available from the salinity difference between river water and seawater, but this energy has yet to be efficiently captured and stored. Here we demonstrate that H₂ can be produced in a single process by capturing the salinity driven energy along with organic matter degradation using exoelectrogenic bacteria. Only five pairs of seawater and river water cells were sandwiched between an anode, containing exoelectrogenic bacteria, and a cathode, forming a microbial reverse-electrodialysis electrolysis cell. Exoelectrogens added an electrical potential from acetate oxidation and reduced the anode overpotential, while the reverse electrodialysis stack contributed 0.5-0.6 V at a salinity ratio (seawater:river water) of 50. The H₂ production rate increased from 0.8 to 1.6 m³-H₂/m³-anolyte/day for seawater and river water flow rates ranging from 0.1 to 0.8 mL/ min. H₂ recovery, the ratio of electrons used for H₂ evolution to electrons released by substrate oxidation, ranged from 72% to 86%. Energy efficiencies, calculated from changes in salinities and the loss of organic matter, were 58% to 64%. By using a relatively small reverse electrodialysis stack (11 membranes), only ~1% of the produced energy was needed for pumping water. Although Pt was used on the cathode in these tests, additional tests with a nonprecious metal catalyst (MoS₂) demonstrated H₂ production at a rate of 0.8 m³/m³/d and an energy efficiency of 51%. These results show that pure H₂ gas can efficiently be produced from virtually limitless supplies of seawater and river water, and biodegradable organic matter.
Identifiers
- Journal
- Unknown journal
- Year
- 2011