The aim of TresClean was to demonstrate high-throughput laser-based manufacturing applied to the production of plastic and metal components in consumer white goods and liquid filling machines through the development and novel implementation of high-average power ultrashort pulsed lasers in combination with high-performance optical devices and beam delivery systems. Using ultrashort pulsed laser irradiation under highly controlled conditions the project aimed to produce hierarchical micro and nanoscale surface features, leading to superhydrophobic behaviour and a reduction in bacterial adhesion responsible for biofouling.
The motivation for the project was to go far beyond the state of the art in laser surface texturing and demonstrate industrial relevance by applying laser surface texturing techniques over large areas of machine parts and tools. Therefore, bridging the gap between the lab-tested feasibility of these laser-treated surfaces and the production for real applications. Among the array of industrial applications that could exploit functionalised surfaces, the project focused on producing self-cleaning and fluid-repellent machine parts for the food industry and home appliances with the objective of enabling easier maintenance and longer service life.
Through a period of very intense research, TresClean demonstrated that laser texturing, characterised by surface features only a few hundred nanometres in size, can be achieved over areas larger than one square meter to induce unique functionalities such as antibacterial and self-cleaning behaviour. The scanning system, specifically conceived within TresClean, achieved speeds of several hundred meters per second, which translates to processing times that are of real industrial interest. Furthermore, an antibacterial effect for surfaces textured with the TresClean technologies, was demonstrated under laboratory conditions, showing the potential of texturing for enhancing the service life of components for agri-food machinery and home appliances. Overall, the project has taken a significant step towards bringing laser texturing out of the lab and demonstrated the value of tailored photonics solutions in a very innovative field.