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Sintering Ceramics at Room Temperature using Phase-Changing Additives

Lead Research Organisation: University of Warwick
Department Name: WMG

Abstract

Up to 90% of the energy used over the lifetime of a ceramic component is consumed during manufacturing. The very high temperatures used are by far the biggest barrier to the wider use of ceramic materials, despite their suitability for use in a wide range of applications including solid-state batteries and other devices. In this project we will attempt to eliminate the need for heating to densify ceramic materials. We will start with pellets pressed from highly pure ceramic powders to which we will add very carefully controlled amounts of "phase-changing additive" substances which convert to metals at relatively low temperatures. This will provide us with a way to input energy by connecting the material to a power supply which will preferentially heat the surfaces of the particles where these substances are placed. We hypothesize that this will lead to intense heating in this region locally, enabling sintering to occur without needing to raise the temperature of the entire sample. This paradigm-shifting idea would radically reduce energy consumption in the ceramics industry and enable co-processing of ceramics with other materials which would usually degrade at the high temperatures of conventional ceramic processing methods. This work, if successful, will enable better manufacturing routes for important technological applications including solid-state batteries and ceramic-based metalized metamaterials for use in imaging and communication. In this project we propose several methods to investigate whether our hypothesis is correct and whether the effects we propose can be sufficiently controlled to lead to extensive densification. We will also investigate how universal the effects are by substituting materials with different ionic, electrical, and thermal conductivities. The project will also involve extensive work to characterise the samples produced using a wide range of imaging, X-ray spectroscopy, and bulk property measurement methods.

Publications

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Related Projects

Project Reference Relationship Related To Start End Award Value
EP/X019055/1 31/03/2023 29/04/2025 £200,854
EP/X019055/2 Transfer EP/X019055/1 01/11/2025 29/09/2026 £118,300
 
Description Lucideon Ltd and Warwick Manufacturing Group 
Organisation Lucideon
Country United Kingdom 
Sector Private 
PI Contribution This partnership with Lucideon has involved so far a jointly funded PhD position at the University of Warwick, the student is now employed as a Senior Scientist at Lucideon due to the value of the skills he developed while working in the area associated with this grant. The grant also benefited significantly from access to the Lucideon flash sintering facilities.
Collaborator Contribution Lucideon have provided access to their facilities and expertise, including working on site at their premises. They have also employed the PhD student. They have already agreed a further PhD studentship to start in October 2022 at the University of Warwick.
Impact Joint papers and joint presentations at conferences, detailed under relevant sections.
Start Year 2018