Sort by
Refine Your Search
-
Country
-
Employer
- University of Amsterdam (UvA)
- VIB
- Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung
- Delft University of Technology (TU Delft)
- Heidelberg University
- IDAEA-CSIC
- KU LEUVEN
- Queensland University of Technology
- Technological University Dublin
- The University of Manchester
- University of Basel
- University of East Anglia
- University of Plymouth
- 3 more »
- « less
-
Field
-
Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung | Sylt Ost, Schleswig Holstein | Germany | 10 days ago
hydroacoustic mapping, environmental sensors and targeted sediment and pore-water sampling. The monitoring and detection approaches developed in the Baltic Sea will subsequently be applied and adapted
-
the cell response. A key innovation in this PhD project is to engineer environmentally (cell)-instructive hydrogels with controlled architecture (pore size, network interconnectivity) and mechanical
-
gaps exist regarding the multiscale behaviour of these treatments, from microscale pore interactions to macroscale building performance. This project will advance beyond the state of the art by
-
sedimentological (grain size distribution), geochemical (XRF, ICP-OES, C/N), and soil physical (density, pore volume, water conductivity) analyses in the laboratory, multivariate statistical evaluation of the data
-
, microscopy, spectroscopy, pore-structure characterization, geochemistry. You are interested in interdisciplinary research at the interface of materials science and microbiology and are motivated to acquire
-
thermodynamic framework capable of simulating chloride penetration, interaction with cement hydration products, and changes in pore solution chemistry over time. Experimental chloride concentration profiles
-
draw on RAMS’ strengths in radiological screening, density and porosity measurement, gas-accessible pore structure, surface area analysis and graphite characterisation, supported where appropriate by
-
, from fundamental theory, laboratory experiments, and detailed numerical simulations, to mesoscale pore network modeling and upscaling to continuum-scale theories that can be applied in application
-
across the vesicle bilayer will be achieved with protein nanowires, ionophores and pore-forming proteins. The project will involve protein purification, protein engineering, spectroscopy, photochemistry
-
, detergents, nanodiscs, or lipid vesicles) Electrophysiology or nanopore recording (planar bilayer or solid-state setups) Structural characterization (cryo-EM, X-ray crystallography, or NMR) Ion channel or pore