Recent advances and emerging challenges in microbial electrolysis cells (MECs) for microbial production of hydrogen and value-added chemicals
Abstract
Microbial electrolysis cell (MEC) is a potentially attractive green technology to tackle the global warming and energy crisis, which employs electrochemically active bacteria to convert organic matter into hydrogen or a wide range of chemicals, such as methane, acetate, hydrogen peroxide, ethanol, and formic acid, without causing environmental pollution. Until now, probably the cleanest and the most efficient method of producing hydrogen has been MEC. However, this technology is still in its infancy period and poses various challenges towards up-scaling and widespread applications, such as such as lower hydrogen production rate (HPR), high internal resistance, complicated architecture, and expensive materials. New advances are needed in biofilm engineering, materials for electrodes and reactor configuration for successful real-world application of this technology. Thus, the present review deals with development of practical MEC technology and includes the following sections: firstly a general introduction to MECs; their operating principles, thermodynamics of MEC, and energy or voltage losses in the MEC system were provided. Followed by a section on the critical factors affecting MEC performance; microorganisms, anode, cathode, membrane or separator, fuel sources, the state-of-art MECs designs, other key operational factors, and its potential application in microbial production of value added products are discussed in detail. Afterwards, current challenges involved in developing practical MEC systems are highlighted, and outlooks for future development are also suggested. The review aims to assist researcher and engineers to gain fundamental understandings of MEC, and it also provides several future research directions and a road map on how to overcome the barriers, so the MEC technology can be further advanced and applied in larger scale.
- Publication:
-
Renewable and Sustainable Energy Reviews
- Pub Date:
- August 2016
- DOI:
- 10.1016/j.rser.2016.04.017
- Bibcode:
- 2016RSERv..61..501K
- Keywords:
-
- AEM;
- Anion-exchange Membrane;
- ARB;
- Anode-respiring Bacteria;
- BBS;
- Bicarbonate Buffer Solution;
- BEAMR;
- Bio-electrochemically Assisted Microbial Reactor;
- BEC;
- Biocatalyzed Electrolysis Cell;
- BPEC;
- Bio-photo Electrochemical Cell;
- C<SUB loc="post">E</SUB>;
- Coulombic Efficiency;
- CEA;
- Cloth Electrode Assemblies;
- CFCs;
- Chlorofluorocarbons;
- CNTs;
- Carbon Nanotubes;
- DC;
- Direct Current;
- DSSC;
- Dye Sensitized Solar Cell;
- DWW;
- Domestic Wastewater;
- EAB;
- Electrochemically Active Bacteria;
- E°<SUB loc="post">an</SUB>;
- The Standard Electrode Potential for Acetate Oxidation;
- E<SUB loc="post">ap</SUB>;
- Applied Voltage;
- E°<SUB loc="post">cat</SUB>;
- The Standard Electrode Potential for Hydrogen;
- EEA;
- Extracellular Electron Acceptors;
- EET;
- Extracellular Electron Transfer;
- F;
- Faraday's constant (96485 C/mole<SUP loc="post">‑</SUP>);
- FP;
- Food Processing;
- GDE;
- Gas Diffusion Electrode;
- GHG;
- Greenhouse Gas;
- GM;
- Green Methods;
- HER;
- Hydrogen Evolution Reaction;
- HPRs;
- Hydrogen Production Rates;
- IEA;
- International Energy Agency;
- IW;
- Industrial Wastewater;
- MECs;
- Microbial Electrolysis Cells;
- MFCs;
- Microbial Fuel Cells;
- MRECs;
- Microbial Reverse-electrodialysis Electrolysis Cells;
- MDC;
- Microbial Desalination Cell;
- MEDC;
- Microbial Electrodialysis Cell;
- MSC;
- Microbial Saline-wastewater electrolysis cell;
- MEDCC;
- Microbial Electrolysis Desalination and Chemical Production Cell;
- MV;
- Methyl Viologen;
- MWCNT;
- Multi-Walled Carbon Nanotube;
- NF;
- Nickel Foam;
- NHE;
- Normal Hydrogen Electrode;
- PBS;
- Phosphate Buffer Solution;
- PEM;
- Proton Exchange Membrane;
- Pt/CC;
- Pt Contained Carbon Cloth;
- R;
- The Universal Gas Constant (8.314J/K/mol);
- R<SUB loc="post">in</SUB>;
- Internal Resistance;
- R<SUB loc="post">CAT</SUB>;
- Cathodic Hydrogen Recovery;
- R<SUB loc="post">H2</SUB>;
- Overall Hydrogen Recovery;
- SHE;
- Standard Hydrogen Electrode;
- SS;
- Stainless steel;
- T (K);
- The Absolute Temperature;
- VFA;
- Volatile Fatty Acids;
- Y<SUB loc="post">H2</SUB>;
- Hydrogen Yield;
- Hydrogen production;
- Microbial electrolysis cell (MEC);
- Exoelectrogens;
- Hydrogen production rate (HPR);
- Cathode catalysts;
- Hydrogen recovery;
- Energy efficiency