Sort by
Refine Your Search
-
Listed
-
Category
-
Program
-
Employer
- Delft University of Technology (TU Delft)
- Eindhoven University of Technology (TU/e)
- European Space Agency
- University of Twente (UT)
- Wageningen University & Research
- Maastricht University (UM)
- University of Amsterdam (UvA)
- University of Groningen
- Utrecht University
- AMOLF
- ARCNL
- Amsterdam UMC, location VUmc
- DIFFER
- HFML-FELIX
- Leiden University
- Radboud University
- Royal Netherlands Academy of Arts and Sciences (KNAW)
- University of Utrecht
- 8 more »
- « less
-
Field
-
resources? In this PhD project, you will explore innovative light-driven strategies for the chemical recycling of polymers. By harnessing the unique reactivity and precise control offered by light, you will
-
, fostering innovation through labs and pilot projects. HRE-FI operates within a dynamic, multidisciplinary setting, integrating cutting-edge technologies to enhance operational efficiency, astronaut support
-
activities, all generally but not exclusively related to your research topic. You are encouraged to visit the ESA website at https://www.esa.int/ Field(s) of activity/research for the traineeship The objective
-
, analyse, and validate innovative numerical algorithms and mathematical frameworks for problems arising in materials, fundamental physics, dynamics, optimisation, control, uncertainty quantification, inverse
-
user needs and assist with activities of daily living and provide additional control of the active layer. Working closely with end users, clinicians, academics, and industrial partners, you will
-
will work in dynamic multidisciplinary project teams consisting of a project leader and one or more researchers. You will be involved in multiple projects simultaneously, ensuring that no two days
-
to understand how people build mental representations of such complex, dynamic spatial systems. Spatial cognition research has traditionally studied how people represent environments through concepts such as
-
PhD in Optical Characterization and Photonic Performance Analysis of Liquid Crystal Polymer Coatings
develops liquid crystal polymer coatings that can selectively control the direction, wavelength, and polarization of reflected and transmitted light. These materials are designed for optical systems in which
-
on static process design and control that don’t account for feedstock variability, inefficient solvent use, and high energy demand, hindering scale-up. Information This project will be executed together
-
outstanding properties depend on a carefully controlled microstructure. Understanding how impurity elements influence these steels is therefore critical for enabling a circular and resource-efficient steel