Completed Cells, Biochemistry & Physiology Materials & Manufacturing

Structural evolution across multiple time and length scales

In plain English

AI plain-English summary

A new X-ray beamline at Diamond, funded by a £3.3 million Manchester investment, will combine synchrotron, neutron, laser, and electron imaging to create 3D movies of materials as they change in real time. Current imaging methods produce static, black-and-white 3D reconstructions. This project will add colour to reveal the elements inside a material and their chemical states, and layer multiple imaging techniques to capture different properties simultaneously. That shift from static snapshots to dynamic, multidimensional views fills a gap: researchers cannot now watch how materials degrade, corrode, or grow under realistic conditions. If successful, the work could improve hydrogen fuel cells for cars by showing how they degrade at 1000°C, extend lithium battery lifetimes by revealing why performance fades during charging, and make aeroengine turbine blades more efficient by studying thermal barrier coatings. It could also help safely store CO₂ in rocks and monitor corrosion in aircraft alloys and nuclear pressure vessels. In medicine, the same imaging suite will let scientists watch cells attach to new biomaterials, enabling better porous bone replacements and fibrous scaffolds for skin, cartilage, and tendon repair. The methods will be available to other UK academics and industry, extending far beyond the initial energy and biomaterials focus.

View original technical description
Taken together the imaging Facilities on the Rutherford Campus will be without equal anywhere in the world. The suite of synchrotron X-ray, neutron, laser, electron, lab. X-ray, and NMR imaging available promises an unprecedented opportunity to obtain information about material structure and behaviour. This infrastructure provides an opportunity to undertake science changing experiments. We need to be able to bring together the insights from different instruments to follow structural evolution under realistic environments and timescales to go beyond static 3D images by radically increasing the dimensionality of information available. This project will use many beamlines at Diamond and ISIS, combining them with laser and electron imaging capability on site, but especially exploiting the 3.3M investment by Manchester into a new imaging beamline at Diamond that will complete in Spring 2012.Traditionally a 3D images are reconstructed from hundreds or thousands of 2D images (projections) taken as the object is rotated. This project will:1) Deliver 3D movies of materials behaviour. 2) Move from essentially black and white images to colour images that reveal the elements inside the material and their chemical state which will be really useful for studying fuel cells and batteries.3) Create multidimensional images by combining more than one method (e.g. lasers and x-rays) to create an image. Each method is sensitive to different aspects.4) Establish an In situ Environments Lab and a Tissue Regeneration lab at the Research Complex. The former so that we can study sample behaviour in real time on the beam line; the latter so that we can study the cell growth and regeneration on new biomaterials. A key capability if we are to develop more effective hard (e.g. artificial hip) and soft tissue (artificial cartilage) replacements.These new methods will provide more detail about a very wide range of behaviours, but we will focus our experiments on materials for Energy and Biomaterials. In the area of energy it will enable us to:Recreate the conditions operating inside a hydrogen fuel cell (1000C) to find out how they degrade in operation leading to better fuel cells for cars and other applicationsStudy the charging and discharging of Li batteries to understand better why their performance degrades over their lifetime.Study thermal barriers that protect turbine blades from the aggressive environments inside an aeroengine to develop more efficient engines.Study the sub-surface corrosion of aircraft alloys and nuclear pressure vessels under realistic conditions improving safetyStudy in 3D how oil is removed from the pores in rocks and how we might more efficiently store harmful CO2in rocks.In the area of biomaterials it will enable us to recreate the conditions under which cells attach to new biomaterials and to follow their attachment and regeneration using a combination of imaging methods (laser, electron and x-ray) leading to:Porous hard tissue replacements (bone analogues) made from bio-active glasses with a microstructure to encourage cell attachmentSoft fibrous tissue replacements for skin, cartilage, tendon. These will involve sub-micron fibres arranged in ropes and mats.Of course the benefits of the multi-dimensional imaging we will establish at Harwell will extend much further. It will provide other academics and industry from across the UK with information across time and lengthscales not currently available. This will have a dramatic effect on our capability to follow behaviour during processing and in service.

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Researchers

Anthony Freemont (Co-Investigator)Brian Derby (Co-Investigator)Cathy Hollis (Co-Investigator)David Christopher Watts (Co-Investigator)David Clarke (Co-Investigator)George Thompson (Co-Investigator)Jonathan James (Co-Investigator)Julian Jones (Co-Investigator)Martin Blunt (Co-Investigator)Michael Sherratt (Co-Investigator)Nigel Brandon (Co-Investigator)Paul Mummery (Co-Investigator)Peter Lee (Co-Investigator)Philip Withers (Principal Investigator)Robert Cernik (Co-Investigator)Robert Stevens (Co-Investigator)SJ Eichhorn (Co-Investigator)Sarah Cartmell (Co-Investigator)

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Original classification

Research Grant

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