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CNRS - Institut de Science des Matériaux de Mulhouse is offering a PhD position within the LAMPS joint laboratory, bridging fundamental research and industrial applications in coatings, inks, adhesives, and functional materials. The student will be affiliated with the Mulhouse campus and benefit from an academic-industrial environment.
The project emphasizes cross-linking processes using UV LEDs and other energy sources, model polymerisable formulations, and a modelling approach linking
Organisation/Company CNRS Department Institut de Science des Matériaux de Mulhouse Research Field Chemistry Physics Technology Researcher Profile First Stage Researcher (R1) Application Deadline 17 Oct 2026 - 23:59 (UTC) Country France Type of Contract Temporary Job Status Full-time Hours Per Week 35 Offer Starting Date 1 Dec 2026 Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No
The PhD project is part of the LAMPS (Light for Advanced Materials and Processes) joint laboratory, a collaboration between the University of Haute-Alsace, the CNRS and Arkema. The PhD student will therefore benefit from an academic and industrial research environment, at the interface between fundamental research, materials development and cross-linking processes.
The student (M/F) will be affiliated with the Mulhouse branch of the Strasbourg Doctoral School (ED 182).
The campus is located in a green setting and is easily accessible by public transportation.
Employee benefits: partial reimbursement of transit fares and/or a transportation allowance, university cafeteria, continuing education, and supplemental health insurance.
Cross-linking processes using external energy sources are playing an increasingly important role in the fields of coatings, inks, adhesives and functional materials. UV photopolymerisation, and more recently LED technologies, enable rapid, localised and energy-efficient processes. Recent developments in UV LEDs at different wavelengths, as well as approaches utilising the near-infrared (NIR), are opening up new possibilities for tailoring cross-linking conditions to specific formulations and desired properties.
This thesis aims to understand the influence of activation conditions on the formation and properties of polymer networks, and to compare different cross-linking technologies under controlled experimental conditions. Particular attention will be paid to the relationships between the energy source (UV or EB), conversion, network structure and final properties.
The work will focus primarily on the study of model polymerisable formulations subjected to different irradiation conditions: conventional UV lamps, UV/visible LEDs across a wide wavelength range (UVC, UVB or UVA) and, where relevant, NIR and EB sources.
The main objectives will be to:
A comparison with cross-linking processes using other energy sources may also be carried out, in particular to identify the respective advantages and limitations of the different technologies.
The materials will be characterised using various techniques, including FTIR/Raman spectroscopy, DSC, DMA, photorheology and mechanical/adhesion testing. A modelling approach will be used to link irradiation conditions to the generation of reactive species and to the properties of the resulting networks.
In a second stage, the results will be applied to more complex formulations representative of industrial applications.
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