Sort by
Refine Your Search
-
Listed
-
Category
-
Employer
- Delft University of Technology (TU Delft)
- Eindhoven University of Technology (TU/e)
- University of Amsterdam (UvA)
- Utrecht University
- Leiden University
- Wageningen University & Research
- University of Groningen
- Vrije Universiteit Amsterdam (VU)
- DIFFER
- Maastricht University (UM)
- University of Twente (UT)
- AMOLF
- ARCNL
- Amsterdam UMC
- Delft University of Technology
- Erasmus MC (University Medical Center Rotterdam)
- KNAW
- Radboud University
- TU Delft
- University of Twente
- 10 more »
- « less
-
Field
-
closely with process, PDK, and PIC design teams and contribute to Europe’s photonics ecosystem through involvement with PITC, JePPIX, and PIXEurope partners Photonic integrated circuits (PICs
-
pathways, policy mixes, social simulation modelling, and possibly participatory value evaluation or gamification. You will collaborate with other early-career and senior researchers in the project, as
-
join a unique project which aims to develop the next generation of green and low-carbon hydrogen technologies. You will be embeded in the Process & Energy department of the Mechanical Engineering Faculty
-
include theoretical results, mathematical proofs, and computational algorithms, as well as open-source software and validation through simulations and analysis. Experimental demonstration is an option if it
-
PhD Position Simulating the Airspace of the Future: Fleet & Network Optimization for Future Aircraft
models will form part of a larger simulation enviroment that evaluates the airspace of the future. The research should consider: Model development: + Characterizing the key performance differences between
-
-resolution transmission imaging alongside complementary modalities such as light microscopy, cathodoluminescence, and focused ion beam processing. By combining the strengths of multiple imaging techniques
-
with simulated data and 2D and 3D imaging data of plant tissues (the thale cress Arabidopsis and the aquatic fern Ceratopteris). At a later stage, the models can be extended to three dimensions using
-
for turning waste (such as hard-to-recycle plastics, flue gases, and brine) into valuable fuels, chemicals, and materials using solar-powered devices. The core challenge is simulating the chemistry of
-
, interviews, backcasting, transition pathways, policy mixes, social simulation modelling, and possibly participatory value evaluation or gamification. You will collaborate with other early-career and senior
-
(see Cyron et al., 2016 ). You will then simulate cartilage microtissues growing inside engineered, confining microenvironments and investigate the key parameters influencing the growth process, with a