Scientists Test Microbial Fuel Cells for Wastewater Treatment

2022-03-26 07:13:02 By : Mr. Kanglly Wong

We use cookies to enhance your experience. By continuing to browse this site you agree to our use of cookies. More info.

A paper currently in pre-proof which will appear in the journal Water Research has presented research into using microbial fuel cells for wastewater treatment and energy production, two important industrial sectors with scope for improvements in terms of sustainability and green credentials.

Study:  Pilot scale microbial fuel cells using air cathodes for producing electricity while treating wastewater . Image Credit: Polina Krasnikova/Shutterstock.com

Biomass contained in wastewater effluence has the potential to be valorized for new products and energy generation purposes. Three hundred billion m3 of domestic wastewater is generated per year, with around 600 billion kWh of energy locked up in organic matter contained in this valuable, renewable resource.

Recovering the energy from wastewater presents an opportunity for achieving the aims of the circular economy as well as helping to drive down the associated costs with wastewater treatment processes.

Recently, there has been a growing body of research into the industrial applications of microbial fuel cells. These innovative devices generate electricity via the oxidation of organic matter, utilizing exoelectrogenic bacteria for this process. The bacteria are held on the anode and are coupled with the oxygen reduction reaction at the fuel cell’s cathode. This produces electrical power.

Current research into microbial fuel cells has been mainly limited to laboratory and bench-scale reactors. Additionally, research has been primarily focused on using synthetic wastewaters, which do not represent typical real-world wastewaters. There is a growing urgency for pilot-scale demonstration of microbial fuel cells which treat real waste streams. These need to display sufficient performance if the technology is to be implemented on a commercial scale.

A key challenge in microbial fuel cell design for industrial application is scalability. This is due to the need to achieve dense electrode packing whilst increasing the capacity of the reactor to maximize its performance. Volumetric power densities are severely affected if the specific surface area of the electrode is not maintained during scale-up. However, maintaining sufficient electrode packing requires electrodes that can withstand high water pressure to avoid flooding of both the cathode and its chamber.

Previous pilot-scale microbial fuel cells have been limited to wastewater aeration processes. This process is undesirable for wastewater treatment and energy recovery since it consumes half of the energy used in the treatment plant.

Direct air cathodes can reduce energy demands, but thus far, research into this technology in microbial fuel cells has been challenging. Increasing the volume of the reactor and electrode dimensions causes leakage and flooding of the cathode and cathode chamber. To date, the largest direct-air cathode reactor utilized expensive precious metal catalysts, which significantly increased the capital costs of the pilot project.

Recently, a novel cathode utilizing activated carbon in a window-pane architecture with the cathodes contained in a stainless-steel frame. The cathode can withstand increased water height than conventional cathodes and produced a maximum power density similar to smaller laboratory-scale microbial fuel cells.

In the new paper, the authors have developed and evaluated the largest air-cathode microbial fuel cell thus far presented in research into wastewater treatment and energy generation.

The microbial fuel cell developed in the research contained multi-panel cathodes, each with fifteen activated charcoal cathode panels. The novel cell was tested on domestic wastewater generated at the Tobyhanna Army Depot in Pennsylvania, USA. The total surface area of the cathodes was 20 m2, and the microbial fuel cell had a total volume of 850 liters.

More from AZoM: What is Femtosecond Laser-Based 3D Printing?

The fuel cell was installed in a wastewater treatment facility that already existed at the site. The effluent from the microbial fuel cell functioned as the influent for a biofiltration unit. This was used to treat the wastewater further to meet relevant discharge standards. The combined microbial fuel cell and biofiltration system were integrated into a wastewater treatment skid that could handle and treat up to 3.79 liters of domestic and industrial wastewater per minute.

The final electrode packing density of the novel microbial fuel cell was comparable to the packing density achieved with smaller, laboratory-scale reactors (23 m2 m-3.) Under 6% of the electron packing density was lost, even with the larger reactor size, demonstrating the performance capabilities of the novel fuel cell design.

The wastewater treatment system developed by the authors was assessed over a six-month period, and its performance was evaluated for water quality, energy production, and energy consumption during various operational modes.

The team observed variable power and current generation depending on the position of anode-cathode pairs within the fuel cell and wastewater flow rate. The modules contained in the middle of the reactor generated four times as much current as modules in other positions. The reactor managed to remove 90% of chemicals and 99% of bacteria in the wastewater. Energy consumption was 50% lower than conventional treatment processes.

The pilot-scale microbial fuel cell reactor presented in the paper provides a potential path forward for the technology, demonstrating that it can be integrated into current domestic and industrial wastewater treatment infrastructure whilst efficiently treating wastewater and generating energy.

Rossi, R et al. (2022) Pilot scale microbial fuel cells using air cathodes for producing electricity while treating wastewater [pre-proof] Water Research | sciencedirect.com. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0043135422001713

Disclaimer: The views expressed here are those of the author expressed in their private capacity and do not necessarily represent the views of AZoM.com Limited T/A AZoNetwork the owner and operator of this website. This disclaimer forms part of the Terms and conditions of use of this website.

Reg Davey is a freelance copywriter and editor based in Nottingham in the United Kingdom. Writing for News Medical represents the coming together of various interests and fields he has been interested and involved in over the years, including Microbiology, Biomedical Sciences, and Environmental Science.

Please use one of the following formats to cite this article in your essay, paper or report:

Davey, Reginald. (2022, February 23). Scientists Test Microbial Fuel Cells for Wastewater Treatment. AZoM. Retrieved on March 26, 2022 from https://www.azom.com/news.aspx?newsID=58320.

Davey, Reginald. "Scientists Test Microbial Fuel Cells for Wastewater Treatment". AZoM. 26 March 2022. <https://www.azom.com/news.aspx?newsID=58320>.

Davey, Reginald. "Scientists Test Microbial Fuel Cells for Wastewater Treatment". AZoM. https://www.azom.com/news.aspx?newsID=58320. (accessed March 26, 2022).

Davey, Reginald. 2022. Scientists Test Microbial Fuel Cells for Wastewater Treatment. AZoM, viewed 26 March 2022, https://www.azom.com/news.aspx?newsID=58320.

Do you have a review, update or anything you would like to add to this news story?

AZoM speaks with Dr. Rajashekar Badam from JAIST about his recently formulated method for anode fabrication that could pave the way to the very fast charging of lithium-ion batteries.

AZoM speaks to Michael Jewett, a researcher at Northwestern University, about a novel process using bacteria to capture CO2 and convert it into the useful commercial chemicals acetone and isopropanol. This could bring us closer to a circular bioeconomy in the chemical sector.

In this interview, AZoM talks to Anna Walkiewicz, Applications Specialist at Quorum Technologies, about sample coating and how it can help improve SEM imaging.

Discover ODIN, a compact deep UV Raman spectrometer by IS-Instruments.

This product profile outlines how the Carousel 12 Plus Reaction Station is used as an effective personal synthesis station.

Microtrac’s Stabino Zeta performs very quick titrations to determine zeta potential and colloidal stability.

This article provides an end-of-life assessment of lithium-ion batteries, focusing on the recycling of an ever-growing amount of spent Li-Ion batteries in order to work toward a sustainable and circular approach to battery use and reuse.

This article provides an overview of the materials that are used to produce photovoltaic cells for the production of renewable energy, as well as new research that proposes the use of novel materials.

This article considers laser-based 3D printing, or additive manufacturing, looking at different types of lasers in the fabrication process.

AZoM.com - An AZoNetwork Site

Owned and operated by AZoNetwork, © 2000-2022