‘Microbial battery’ could turn wastewater into electricity
Most of the material we consider to be waste, from sewage to discarded food, actually contains significant amounts of potential energy in the form of carbon-rich chemicals, Arstechnica.com reported.
The problem is that it's generally diffuse and often present in water-saturated materials, making it impossible to combust without extensive processing.
And, if we ever tried, we'd end up competing with microbes that make a living off extracting energy from those same carbon sources. So in recent years, researchers have been experimenting with microbial fuel cells, where bacteria clustered at an electrode extract carbon from waste metabolize it in a way that releases electrons into the device. Researchers have now developed a new device design that merges features of a battery and a fuel cell to extract more electricity from the bacteria.
Most microbial fuel cells have a design where bacteria grow at the anode, which is separated from the cathode by a membrane. Typically, the cathode transfers electrons to reduce oxygen. However, some of that oxygen typically diffuses across to the bacteria, which can use it directly instead of transferring their electrons to the fuel cell itself.
In the new design, researchers have replaced the cathode with a solid piece of silver oxide. As electrons arrive, this gets reduced to silver. Conveniently, silver is toxic to microbes, which means that the bacteria can't grow on the cathode. That eliminates the need for a membrane to separate the two electrodes, cutting down on the complexity and cost. The key difference between this system and normal microbial fuel cells is that enough of the silver oxide is eventually converted to silver that the reaction stalls. At this point, the silver electrode needs to be pulled out and re-oxidized.
On its own, the setup is very efficient. When given a solution of glucose to feed on, the bacteria at the anode happily digested over 90 percent of it, rapidly draining the system of its fuel source. Various fractions of the energy in the glucose went into the bacteria's growth and maintenance, but nearly half of the energy involved ended up being made available as electricity.









