Steel mills and refineries currently vent vast amounts of carbon monoxide gas into the atmosphere as waste. A group of UK researchers is building a national network to turn that waste gas into useful chemicals and fuels, using bacteria that literally eat carbon monoxide. The problem is twofold. First, making chemicals and fuels today relies heavily on finite fossil fuels, often from politically unstable regions, and the process pumps out greenhouse gases. Second, attempts to use plant biomass instead—like making ethanol from corn or agricultural waste—either compete with food supplies or are too expensive because plant cell walls are stubbornly hard to break down. This network targets a workaround: feeding industrial waste gases directly to specialised bacteria in fermentation vessels, bypassing plants entirely. If the network succeeds, it could create a new UK industry that turns pollution into profit. The bacteria would convert carbon monoxide—a cheap, abundant industrial byproduct—into products like bioethanol or other platform chemicals. This would reduce fossil carbon emissions, avoid the food-versus-fuel dilemma, and make use of materials like municipal waste and forestry residues that are currently discarded. The network aims to connect biologists, chemists, and engineers to accelerate this technology from the lab into commercial use.
View original technical description
As economies and populations grow, there is an ever increasing demand for chemicals and energy, driven by developing countries, where increasing prosperity is fueling the desire for the improved quality of life visible in the developed world. Current energy and chemical needs are met by the extraction and processing of fossil fuels, in the form of coal, petroleum and natural gas. Such resources are finite, are frequently found in politically unstable regions of the world, and their utilisation is having severe impacts on the climate, both through pollution and increased greenhouse gas (GHG) emissions. The key challenge facing the global community is, therefore, to maximize the use of sustainable sources of chemicals and of energy to safeguard the environment while ensuring that the latter do not detrimentally impact food supplies. In this regard, renewable sources of energy and chemicals will play an increasing role in the global primary energy supply. Accordingly, the UK government and others have set challenging targets for reductions in GHG in part by aiming to produce chemicals using biological routes. Traditional strategies adopted for chemical and biofuel generation via biological systems have been reliant on the conversion of the more tractable components of plant biomass (sugars and starch) into chemicals and fuels. The microbes employed ferment the easily accessible sugar and/or starch of plants, such as sugar cane or corn, and convert them into biofuels such as bioethanol. This has led to concerns over competition with use of these products as food, and a re-focussing of efforts on so-called 'second generation' biofuels. These are generated from cell wall material (lignocellulose) derived from non-food crops or agricultural wastes. However, lignocellulose is extremely resistant to being broken down into sugar. Overcoming this recalcitrance in a cost effective manner is proving extremely challenging. An alternative route would be to directly capture carbon, by harnessing the ability of certain bacteria to 'eat' single carbon gases such as carbon monoxide (CO), carbon dioxide (CO2) and methane (CH4). Thus, for instance, such gases are injected into the liquid medium of fermentation vessels they are consumed by certain bacteria and converted into useful chemicals and fuels. Fortunately, gases such as CO are an abundant resource, and a waste product of industries such as steel manufacturing, oil refining and chemical production. Moreover, it can be readily generated in the form of Synthesis Gas ('Syngas'), by the gasification (heating) of forestry and agricultural residues, municipal waste and coal. By allowing the use of all these available low cost, non-food resources, such a process both overcomes the "Food versus Fuel" issues associated with traditional ethanol production, and circumvents many of the challenges associated with 'second generation' biofuels. Furthermore, capturing the large volume of CO (destined to become CO2 once released into the atmosphere) emitted by industry for fuel and chemical production provides a net reduction in fossil carbon emissions. There has been a global upsurge of interest both in studying the biology of those organisms able to grow on C1 gases, as well as commercially exploiting them as platforms for chemical manufacture. In this respect the UK lags disappointingly behind the curve. It is the objective of the C1NET to correct this deficiency by encouraging the creation of a vibrant community of UK academics tasked with unravelling the biological, chemical and process engineering aspects of gas fermentation and to steer the translational outputs of these endeavours towards commercial application. The network will provide the 'glue' to bring together a UK-based cadre of biologists, chemists, computational modellers/mathematicians and process engineers to better understand and thence exploit gas fermentation processes for translation into industry.
Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.
Is something wrong? Let us know