Completed Chemistry Clean Energy

Castech

In plain English

AI plain-English summary

Catalysis—the process that speeds up chemical reactions—is being redesigned from the atomic level up to turn waste gases, plant matter, and industrial byproducts into fuels, chemicals, and medicines. The problem is that many promising chemical reactions are inefficient, energy-intensive, or produce large amounts of waste. This project tackles that gap by building new tools—magnetic resonance imaging of reacting liquids, high-speed spectroscopy, and computer simulations—to watch exactly how catalysts interact with solvents and reactants in real time. Understanding these interactions at multiple scales, from the bulk liquid down to the catalyst’s porous surface, is currently missing from the science. If successful, the research could make three things possible: converting lignin from paper mills into vanillin and other high-value chemicals instead of burning it; turning biogas from farms into dimethyl ether, a clean fuel, using compact reactors; and manufacturing catalysts themselves through electrochemical deposition, which skips several polluting steps and produces almost no waste. None of these changes will happen overnight—the work is fundamental science aimed at building the knowledge base that industry needs to design cleaner, cheaper processes.

View original technical description
Mankind faces great challenges in providing sufficient supplies of renewable energy, in protecting our environment, and in developing benign processes for the chemical and pharmaceutical industries. These urgent problems can only be solved by applying the best available technology, but this requires a solid foundation of fundamental knowledge created through a multidisciplinary yet focussed approach. Catalysis is an essential enabling technology because it holds the key to solving many of these problems. CASTech aims to build on the science and engineering advances developed in previous collaborative programmes involving the main participants. Specifically, new core competencies for the investigation of reactions in multiphase systems will be developed. These will include MR imaging techniques (University of Cambridge, UCam); computational fluid dynamics (UCam); spectroscopic methods (QUB); SSITKA (QUB); flow visualisation and particle tracking (PEPT) (University of Birmingham, UBir); theoretical calculations (University of Virginia, UVa; QUB) for liquid phase processes. An enhanced time resolution fast transient and operando spectroscopy capability will be developed for investigating the mechanisms and the nature of the active sites in heterogeneous catalytic gas phase reactions (QUB). These core competencies will be applied to investigate the activation of saturated alkanes, initially building on our recent success in oxidative cracking of longer chain alkanes.We propose to develop our experimental and modelling capabilities with the objective of providing quantitative data on how to enhance the performance of a catalytic system by understanding and controlling the interaction between the solvent(s), the substrates and the catalyst surface. We aim to be able to describe the structure of liquids in catalytic systems at multiscale from the external (bulk) liquid phase to inside the porous structure of the catalyst and at the catalyst surface. The research will integrate new experimental probes and complementary theoretical approaches to help us understand liquid structures and we will use this information in collaboration with our industrial partners to address specific technical challenges.Bio-polymeric materials, e.g. cellulose and lignin, have the potential to provide functionalised building blocks for both existing and novel chemical products. Our ultimate aim is to provide novel and economically viable processes for the conversion of lignin into high value-added products. However, by starting with the conversion of lignosulphonates into vanillin and other higher value chemicals we will develop not only new processes but also the core competencies required to work with more complex fluids.Biogas (CH4 + CO2) can be produced from many different renewable sources but capturing and storing the energy is difficult on a small distributed scale. We propose to investigate a new, economic, down-sized engineering approach to the conversion of methane to dimethylether. This will be achieved by reducing the number of unit operations and developing new catalysts capable of performing under the more extreme temperature conditions that will be required to make the process economic.The drive to use catalysts for cleaner more sustainable chemistry needs also to address the inherently polluting and unsustainable process of catalyst manufacture itself. We will investigate the sustainable production of supported catalysts using electrochemical deposition of the metal. This method bypasses several conventional steps and would generate very little waste. In all these Grand Challenges there will be close collaboration between all the academic and industrial groups.

View the original record at the funder ↗

Researchers

Alexandre Goguet (Co-Investigator)Andrew Craig Marr (Co-Investigator)Anthony Paxton (Co-Investigator)Christopher Hardacre (Co-Investigator)David Rooney (Co-Investigator)Gary Sheldrake (Co-Investigator)Jillian Thompson (Co-Investigator)Jorge Kohanoff (Co-Investigator)Maria Lagunas (Co-Investigator)Peijun Hu (Co-Investigator)Robbie Burch (Principal Investigator)S James (Co-Investigator)Sergiy Shekhtman (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Clean catalysis for sustainable development
Technical support
CBET-EPSRC: Bespoke Porous Catalyst Design via Integrated Stochastic Modelling of Reaction and Transport in Synergy with Experiments
GLOBAL - Joining Forces in Sustainable Catalysis and Energy Based on Renewables
CBET-EPSRC Direct methane conversion into valuable oxygenates via tandem catalysis

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.