Thermal Recovery of Functional Coatings (TReFCo)
Lead Research Organisation:
UNIVERSITY OF BATH
Department Name: Mechanical Engineering
Abstract
When devices such as computers, smart phones and batteries are sent for recycling not all of the materials are captured for use in new devices. The metals are most likely to be recycled because they are easy to separate and their methods of recycling are well established. Specialist coatings often made with rare and expensive materials enable our modern electronics to work. However these coatings often cause problems when it comes to recycling, they can mean that the metals are more contaminated and so these coatings are often burnt off, causing pollution and adding cost to the recycling process. It also means that the expensive cleverly engineered coating has been lost and its value not realised.
TReFCo aims to develop a low cost method for removing these coatings so that they can be reused to make new devices. This will have multiple benefits; it will mean that valuable raw materials are kept within the supply chain, supporting the UK economy. It will also mean that the materials that they were coated on are cleaner prior to their recycling process ensuring a purer recycled product at a lower cost.
The method employed by TReFCo will be to subject the coatings to near infrared radiation to burn the binder (glue) that holds the coating in place without damaging the coating material or the substrate material.
TReFCo will also develop new adhesives that will 'unglue' when exposed to near infrared radiation, making it easier (and cheaper) to take devices apart before they are recycled. This could also be used within a repair process.
In addition to the technical developments during the project a lifecycle analysis will be undertaken - this will ensure that researchers fully understand the environmental costs of producing materials and recycling them. Identifying any areas that are environmentally damaging in order that they can be avoided by material design or by changing the processing methods. In all the aim of the project is to make the possibility of a truly circular economy one step closer to being a reality.
TReFCo aims to develop a low cost method for removing these coatings so that they can be reused to make new devices. This will have multiple benefits; it will mean that valuable raw materials are kept within the supply chain, supporting the UK economy. It will also mean that the materials that they were coated on are cleaner prior to their recycling process ensuring a purer recycled product at a lower cost.
The method employed by TReFCo will be to subject the coatings to near infrared radiation to burn the binder (glue) that holds the coating in place without damaging the coating material or the substrate material.
TReFCo will also develop new adhesives that will 'unglue' when exposed to near infrared radiation, making it easier (and cheaper) to take devices apart before they are recycled. This could also be used within a repair process.
In addition to the technical developments during the project a lifecycle analysis will be undertaken - this will ensure that researchers fully understand the environmental costs of producing materials and recycling them. Identifying any areas that are environmentally damaging in order that they can be avoided by material design or by changing the processing methods. In all the aim of the project is to make the possibility of a truly circular economy one step closer to being a reality.
Organisations
- UNIVERSITY OF BATH (Lead Research Organisation)
- Adphos Group (Collaboration)
- Keeling and Walker Limited (Project Partner)
- Precision Varionic International Ltd PVi (Project Partner)
- Tata Group UK (Project Partner)
- adphos Group (International) (Project Partner)
- Elemental Inks & Chemicals (Project Partner)
- PLUG LIFE CONSULTING LTD (Project Partner)
- WRAP (Waste and Resources Action Prog) (Project Partner)
Publications
Blakesley J
(2024)
Roadmap on established and emerging photovoltaics for sustainable energy conversion
in Journal of Physics: Energy
Cressall S
(2024)
The effect of high-intensity gamma radiation on PETG and ASA polymer-based fused deposition modelled 3D printed parts
in Journal of Materials Science
Li Y
(2025)
Comparative environmental impacts analysis of technologies for recovering critical metals from copper anode slime: Insights from LCA
in Environmental Chemistry and Ecotoxicology
Martà Valls R
(2024)
A facile method to obtain colloidal dispersions of nickel hydroxide: Improving the processing of nickel oxide and facilitating its upscaling for perovskite-type solar devices
in Colloids and Surfaces A: Physicochemical and Engineering Aspects
Palmieri E
(2026)
Fully printed energy storage devices on consumer paper substrates: An eco-friendly approach for low-cost and disposable smart electronics system
in Energy Advances
Phillips C
(2024)
Enhanced color density from high-viscosity inkjet inks
in Journal of Coatings Technology and Research
Poli I
(2026)
Lead-free perovskites and derivatives for photogeneration: a roadmap to sustainable approaches for photovoltaics and photo(electro)catalysis
in Journal of Physics: Energy
Valadez-Villalobos K
(2024)
Remanufacturing of perovskite solar cells
in RSC Sustainability
Valls R
(2024)
A new approach for obtaining ceramic NASICON (Na 3 Zr 2 Si 2 PO 12 ) films sintered in situ by a sol-gel method, using spray deposition and near-infra red sintering
in Journal of Materials Chemistry A
Related Projects
| Project Reference | Relationship | Related To | Start | End | Award Value |
|---|---|---|---|---|---|
| EP/W019167/1 | 01/05/2022 | 31/08/2024 | £1,005,537 | ||
| EP/W019167/2 | Transfer | EP/W019167/1 | 01/09/2024 | 30/04/2026 | £493,610 |
| Description | Royal Academy of Engineering - UK-China BIPV Mission |
| Geographic Reach | Multiple continents/international |
| Policy Influence Type | Participation in a guidance/advisory committee |
| Description | NIR partnership |
| Organisation | Adphos Group |
| Department | Research - and CTO |
| Country | Germany |
| Sector | Private |
| PI Contribution | Contributions are testing of new markets for NIR sintering including high temperature ceramics processing |
| Collaborator Contribution | Knowledge transfer about the NIR process and also technical set up of remote temperature probe. |
| Impact | One publication - in outputs, a number of publications in progress, also funding of TREFCO. |
| Start Year | 2019 |
