Sort by
Refine Your Search
-
Category
-
Employer
- Delft University of Technology (TU Delft)
- Eindhoven University of Technology (TU/e)
- Utrecht University
- Wageningen University & Research
- University of Amsterdam (UvA)
- Radboud University
- Leiden University
- Maastricht University (UM)
- University of Groningen
- University of Twente (UT)
- Vrije Universiteit Amsterdam (VU)
- Amsterdam UMC
- Royal Netherlands Academy of Arts and Sciences (KNAW)
- University of Twente
- KNAW
- Radboud University Medical Center (Radboudumc)
- ARCNL
- HFML-FELIX
- Sanquin Blood Supply Foundation (Sanquin)
- Erasmus MC (University Medical Center Rotterdam)
- Naturalis
- University Medical Center Utrecht (UMC Utrecht)
- University Medical Centre Groningen (UMCG)
- AMOLF
- Amsterdam UMC, location VUmc
- Centrum Wiskunde en Informatica (CWI)
- DIFFER
- Delft University of Technology
- Erasmus University Rotterdam
- Erasmus University Rotterdam (EUR)
- Fryske Akademy
- Hotelschool The Hague
- Prinses Máxima Centrum
- TU Delft
- Tilburg University
- University Medical Center Groningen
- 26 more »
- « less
-
Field
- Computer Science
- Engineering
- Medical Sciences
- Economics
- Biology
- Materials Science
- Chemistry
- Mathematics
- Linguistics
- Psychology
- Business
- Science
- Earth Sciences
- Humanities
- Social Sciences
- Electrical Engineering
- Arts and Literature
- Design
- Environment
- Law
- Physics
- Education
- Philosophy
- Sports and Recreation
- 14 more »
- « less
-
cardiovascular medicine. Mechanical Circulatory Support (MCS) technologies offer life-saving potential, yet optimal patient selection, timing, and device strategies require deeper mechanistic and clinical insight
-
optimize the detector and its parameters. In this project, you will focus on developing a suitable solution for integrating photo detectors with the analog front-end. You will work on this solution, ensuring
-
optimization strategies to maximize yields of desired products. A key aspect of the project is understanding and improving catalyst stability, including identifying deactivation mechanisms and developing
-
the bearing. To optimally re-lubricate, it is vital to understand this mixing process. Currently, the scientific knowledge of re-lubrication is non-existent. This project will build new knowledge on several key
-
with advanced photoreactors, modular LED light sources, inline analytics, and machine-learning algorithms for the autonomous optimization of photocatalytic reactions. Research will address key challenges
-
brings together expertise in energy informatics, optimization, data science, social sciences, and governance to develop trusted data-sharing solutions for the heat transition. Within the project, you will
-
of the Seamless Personal Mobility Lab at IDE as well as the Smart Public Transport Lab at CEG, where you can easily connect with other mobility and transport related PhDs and (post-doc) researchers
-
background: familiarity with dynamic optimization, cost‑benefit analysis or macroeconomic modelling is an advantage; Experience with programming (Python, R, MATLAB or similar); Ability to collaborate
-
elements should be used to generate the required radiation? how do we generate as many ‘usable’ photons from the plasma as possible? What are the optimal laser and target properties? Project goal The goal
-
electrochemical interfaces for electrocatalysis and batteries. You will investigate how the properties of the electrode-electrolyte interface can be leveraged to optimize the activity, selectivity, and stability